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| You are working in `/workspace/cpython`, a source tree checked out at | |
| the base commit for this task. Implement the requested behavior in the source | |
| tree, then run: | |
| ```bash | |
| lolbench-submit | |
| ``` | |
| Do not stop after editing files, running tests, or describing the solution. The | |
| task is complete only when `lolbench-submit` has created | |
| `/logs/artifacts/solution.patch`. If that file does not exist, continue | |
| working and run `lolbench-submit` again. | |
| That command writes your implementation diff to | |
| `/logs/artifacts/solution.patch`, which is the artifact the Harbor verifier | |
| will grade. Before running `lolbench-submit`, clean or revert any test files | |
| you created or modified; test files must not be included in the final | |
| `solution.patch`. | |
| This environment has no outbound internet access — `curl`/`wget`, `git fetch`/`clone`, package installs, and web fetch/search will all fail. Implement the requirements using only the code already in the workspace and your own knowledge; do not attempt to fetch or search external resources. | |
| Now please implement the following requirements in the source tree: | |
| --- | |
| ## Abstract | |
| This PEP introduces template strings for custom string processing. | |
| Template strings are a generalization of f-strings, using a `t` in place of | |
| the `f` prefix. Instead of evaluating to `str`, t-strings evaluate to a new | |
| type, `Template`: | |
| ```python | |
| template: Template = t"Hello {name}" | |
| ``` | |
| Templates provide developers with access to the string and its interpolated | |
| values *before* they are combined. This brings native flexible string | |
| processing to the Python language and enables safety checks, web templating, | |
| domain-specific languages, and more. | |
| ## Relationship With Other PEPs | |
| Python introduced f-strings in Python 3.6 with PEP 498. The grammar was | |
| then formalized in PEP 701 which also lifted some restrictions. This PEP | |
| is based on PEP 701. | |
| At nearly the same time PEP 498 arrived, PEP 501 was written to provide | |
| "i-strings" -- that is, "interpolation template strings". The PEP was | |
| deferred pending further experience with f-strings. Work on this PEP was | |
| resumed by a different author in March 2023, introducing "t-strings" as template | |
| literal strings, and built atop PEP 701. | |
| The authors of this PEP consider it to be a generalization and simplification | |
| of the updated work in PEP 501. (That PEP has also recently been updated to | |
| reflect the new ideas in this PEP.) | |
| ## Motivation | |
| Python f-strings are easy to use and very popular. Over time, however, developers | |
| have encountered limitations that make them | |
| [unsuitable for certain use cases](https://docs.djangoproject.com/en/5.1/ref/utils/#django.utils.html.format_html). | |
| In particular, f-strings provide no way to intercept and transform interpolated | |
| values before they are combined into a final string. | |
| As a result, incautious use of f-strings can lead to security vulnerabilities. | |
| For example, a user executing a SQL query with `python:sqlite3` | |
| may be tempted to use an f-string to embed values into their SQL expression, | |
| which could lead to a [SQL injection attack](https://en.wikipedia.org/wiki/SQL_injection). | |
| Or, a developer building HTML may include unescaped user input in the string, | |
| leading to a [cross-site scripting (XSS)](https://en.wikipedia.org/wiki/Cross-site_scripting) | |
| vulnerability. | |
| More broadly, the inability to transform interpolated values before they are | |
| combined into a final string limits the utility of f-strings in more complex | |
| string processing tasks. | |
| Template strings address these problems by providing | |
| developers with access to the string and its interpolated values. | |
| For example, imagine we want to generate some HTML. Using template strings, | |
| we can define an `html()` function that allows us to automatically sanitize | |
| content: | |
| ```python | |
| evil = "<script>alert('evil')</script>" | |
| template = t"<p>{evil}</p>" | |
| assert html(template) == "<p><script>alert('evil')</script></p>" | |
| ``` | |
| Likewise, our hypothetical `html()` function can make it easy for developers | |
| to add attributes to HTML elements using a dictionary: | |
| ```python | |
| attributes = {"src": "shrubbery.jpg", "alt": "looks nice"} | |
| template = t"<img {attributes} />" | |
| assert html(template) == '<img src="shrubbery.jpg" alt="looks nice" />' | |
| ``` | |
| Neither of these examples is possible with f-strings. By providing a | |
| mechanism to intercept and transform interpolated values, template strings | |
| enable a wide range of string processing use cases. | |
| ## Specification | |
| ### Template String Literals | |
| This PEP introduces a new string prefix, `t`, to define template string literals. | |
| These literals resolve to a new type, `Template`, found in the standard library | |
| module `!string.templatelib`. | |
| The following code creates a `Template` instance: | |
| ```python | |
| from string.templatelib import Template | |
| template = t"This is a template string." | |
| assert isinstance(template, Template) | |
| ``` | |
| Template string literals support the full syntax of PEP 701. This includes | |
| the ability to nest template strings within interpolations, as well as the ability | |
| to use all valid quote marks (`'`, `"`, `'''`, and `"""`). Like other string | |
| prefixes, the `t` prefix must immediately precede the quote. Like f-strings, | |
| both lowercase `t` and uppercase `T` prefixes are supported. Like | |
| f-strings, t-strings may not be combined with `u` or the `b` prefix. | |
| Additionally, f-strings and t-strings cannot be combined, so the `ft` | |
| prefix is invalid. t-strings *may* be combined with the `r` prefix; | |
| see the `Raw Template Strings`_ section below for more information. | |
| ### The `Template` Type | |
| Template strings evaluate to an instance of a new immutable type, | |
| `!string.templatelib.Template`: | |
| ```python | |
| class Template: | |
| strings: tuple[str, ...] | |
| """ | |
| A non-empty tuple of the string parts of the template, | |
| with N+1 items, where N is the number of interpolations | |
| in the template. | |
| """ | |
| interpolations: tuple[Interpolation, ...] | |
| """ | |
| A tuple of the interpolation parts of the template. | |
| This will be an empty tuple if there are no interpolations. | |
| """ | |
| def __new__(cls, *args: str | Interpolation): | |
| """ | |
| Create a new Template instance. | |
| Arguments can be provided in any order. | |
| """ | |
| ... | |
| @property | |
| def values(self) -> tuple[object, ...]: | |
| """ | |
| Return a tuple of the `value` attributes of each Interpolation | |
| in the template. | |
| This will be an empty tuple if there are no interpolations. | |
| """ | |
| ... | |
| def __iter__(self) -> Iterator[str | Interpolation]: | |
| """ | |
| Iterate over the string parts and interpolations in the template. | |
| These may appear in any order. Empty strings will not be included. | |
| """ | |
| ... | |
| ``` | |
| The `strings` and `interpolations` attributes provide access to the string | |
| parts and any interpolations in the literal: | |
| ```python | |
| name = "World" | |
| template = t"Hello {name}" | |
| assert template.strings[0] == "Hello " | |
| assert template.interpolations[0].value == "World" | |
| ``` | |
| ### The `Interpolation` Type | |
| The `Interpolation` type represents an expression inside a template string. | |
| Like `Template`, it is a new class found in the `!string.templatelib` module: | |
| ```python | |
| class Interpolation: | |
| value: object | |
| expression: str | |
| conversion: Literal["a", "r", "s"] | None | |
| format_spec: str | |
| __match_args__ = ("value", "expression", "conversion", "format_spec") | |
| def __new__( | |
| cls, | |
| value: object, | |
| expression: str = "", | |
| conversion: Literal["a", "r", "s"] | None = None, | |
| format_spec: str = "", | |
| ): | |
| ... | |
| ``` | |
| The `Interpolation` type is shallow immutable. Its attributes | |
| cannot be reassigned. | |
| The `value` attribute is the evaluated result of the interpolation: | |
| ```python | |
| name = "World" | |
| template = t"Hello {name}" | |
| assert template.interpolations[0].value == "World" | |
| ``` | |
| When interpolations are created from a template string literal, the | |
| `expression` attribute contains the *original text* of the interpolation: | |
| ```python | |
| name = "World" | |
| template = t"Hello {name}" | |
| assert template.interpolations[0].expression == "name" | |
| ``` | |
| When developers explicitly construct an `Interpolation`, they may optionally | |
| provide a value for the `expression` attribute. Even though it is stored as | |
| a string, this *should* be a valid Python expression. If no value is provided, | |
| the `expression` attribute defaults to the empty string (`""`). | |
| We expect that the `expression` attribute will not be used in most template | |
| processing code. It is provided for completeness and for use in debugging and | |
| introspection. See both the `Common Patterns Seen in Processing Templates`_ | |
| section and the `Examples`_ section for more information on how to process | |
| template strings. | |
| The `conversion` attribute is the `optional conversion <python:formatstrings>` | |
| to be used, one of `r`, `s`, and `a`, corresponding to `repr()`, | |
| `str()`, and `ascii()` conversions. As with f-strings, no other conversions | |
| are supported: | |
| ```python | |
| name = "World" | |
| template = t"Hello {name!r}" | |
| assert template.interpolations[0].conversion == "r" | |
| ``` | |
| If no conversion is provided, `conversion` is `None`. | |
| The `format_spec` attribute is the `format specification <python:formatspec>`. | |
| As with f-strings, this is an arbitrary string that defines how to present the value: | |
| ```python | |
| value = 42 | |
| template = t"Value: {value:.2f}" | |
| assert template.interpolations[0].format_spec == ".2f" | |
| ``` | |
| Format specifications in f-strings can themselves contain interpolations. This | |
| is permitted in template strings as well; `format_spec` is set to the eagerly | |
| evaluated result: | |
| ```python | |
| value = 42 | |
| precision = 2 | |
| template = t"Value: {value:.{precision}f}" | |
| assert template.interpolations[0].format_spec == ".2f" | |
| ``` | |
| If no format specification is provided, `format_spec` defaults to an empty | |
| string (`""`). This matches the `format_spec` parameter of Python's | |
| `python:format` built-in. | |
| Unlike f-strings, it is up to code that processes the template to determine how to | |
| interpret the `conversion` and `format_spec` attributes. | |
| Such code is not required to use these attributes, but when present they should | |
| be respected, and to the extent possible match the behavior of f-strings. | |
| It would be surprising if, for example, a template string that uses `{value:.2f}` | |
| did not round the value to two decimal places when processed. | |
| ### The `Template.values` Property | |
| The `Template.values` property is a shortcut for accessing the `value` | |
| attribute of each `Interpolation` in the template and is equivalent to: | |
| ```python | |
| @property | |
| def values(self) -> tuple[object, ...]: | |
| return tuple(i.value for i in self.interpolations) | |
| ``` | |
| ### Iterating `Template` Contents | |
| The `Template.__iter__()` method provides a simple way to access the full | |
| contents of a template. It yields the string parts and interpolations in | |
| the order they appear, with empty strings omitted. | |
| The `__iter__()` method is equivalent to: | |
| ```python | |
| def __iter__(self) -> Iterator[str | Interpolation]: | |
| for s, i in zip_longest(self.strings, self.interpolations): | |
| if s: | |
| yield s | |
| if i: | |
| yield i | |
| ``` | |
| The following examples show the `__iter__()` method in action: | |
| ```python | |
| assert list(t"") == [] | |
| assert list(t"Hello") == ["Hello"] | |
| name = "World" | |
| template = t"Hello {name}!" | |
| contents = list(template) | |
| assert len(contents) == 3 | |
| assert contents[0] == "Hello " | |
| assert contents[1].value == "World" | |
| assert contents[1].expression == "name" | |
| assert contents[2] == "!" | |
| ``` | |
| Empty strings, which may be present in `Template.strings`, are not included | |
| in the output of the `__iter__()` method: | |
| ```python | |
| first = "Eat" | |
| second = "Red Leicester" | |
| template = t"{first}{second}" | |
| contents = list(template) | |
| assert len(contents) == 2 | |
| assert contents[0].value == "Eat" | |
| assert contents[0].expression == "first" | |
| assert contents[1].value == "Red Leicester" | |
| assert contents[1].expression == "second" | |
| ## However, the strings attribute contains empty strings: | |
| assert template.strings == ("", "", "") | |
| ``` | |
| Template processing code can choose to work with any combination of | |
| `strings`, `interpolations`, `values`, and `__iter__()` based on | |
| requirements and convenience. | |
| ### Processing Template Strings | |
| Developers can write arbitrary code to process template strings. For example, | |
| the following function renders static parts of the template in lowercase and | |
| interpolations in uppercase: | |
| ```python | |
| from string.templatelib import Template, Interpolation | |
| def lower_upper(template: Template) -> str: | |
| """Render static parts lowercased and interpolations uppercased.""" | |
| parts: list[str] = [] | |
| for item in template: | |
| if isinstance(item, Interpolation): | |
| parts.append(str(item.value).upper()) | |
| else: | |
| parts.append(item.lower()) | |
| return "".join(parts) | |
| name = "world" | |
| assert lower_upper(t"HELLO {name}") == "hello WORLD" | |
| ``` | |
| There is no requirement that template strings are processed in any particular | |
| way. Code that processes templates has no obligation to return a string. | |
| Template strings are a flexible, general-purpose feature. | |
| See the `Common Patterns Seen in Processing Templates`_ section for more | |
| information on how to process template strings. See the `Examples`_ section | |
| for detailed working examples. | |
| ### Template String Concatenation | |
| Template strings support explicit concatenation using `+`. Concatenation is | |
| supported for two `Template` instances via `Template.__add__()`: | |
| ```python | |
| name = "World" | |
| assert isinstance(t"Hello " + t"{name}", Template) | |
| assert (t"Hello " + t"{name}").strings == ("Hello ", "") | |
| assert (t"Hello " + t"{name}").values[0] == "World" | |
| ``` | |
| Implicit concatenation of two template string literals is also supported: | |
| ```python | |
| name = "World" | |
| assert isinstance(t"Hello " t"{name}", Template) | |
| assert (t"Hello " t"{name}").strings == ("Hello ", "") | |
| assert (t"Hello " t"{name}").values[0] == "World" | |
| ``` | |
| `Template` and `str` can be concatenated with `+`: `Template + str` appends | |
| the `str` as a static string part (extending the `Template`'s last string), | |
| and `str + Template` prepends it as a static string part; both return a new | |
| `Template`. Adjacent t-string and `str`/`f`/`r` string literals implicitly | |
| concatenate into a single `Template`, with the literal parts folded into the | |
| static strings. (This task targets the PR-132662 semantics, which permit `+` | |
| concatenation.) | |
| A `str` can also be incorporated explicitly through the `Template` constructor | |
| to make its role unambiguous. If the `str` is intended to be a static string | |
| part, it should be wrapped in a `Template`. If the `str` is intended to be an | |
| interpolation value, it should be wrapped in an `Interpolation` and passed to | |
| the `Template` constructor. For example: | |
| ```python | |
| name = "World" | |
| ## Treat `name` as a static string part | |
| template = t"Hello " + Template(name) | |
| ## Treat `name` as an interpolation | |
| template = t"Hello " + Template(Interpolation(name, "name")) | |
| ``` | |
| ### Template and Interpolation Equality | |
| `Template` and `Interpolation` instances compare with object identity | |
| (`is`). | |
| `Template` instances are intended to be used by template processing code, | |
| which may return a string or any other type. Those types can provide their | |
| own equality semantics as needed. | |
| ### No Support for Ordering | |
| The `Template` and `Interpolation` types do not support ordering. This is | |
| unlike all other string literal types in Python, which support lexicographic | |
| ordering. Because interpolations can contain arbitrary values, there is no | |
| natural ordering for them. As a result, neither the `Template` nor the | |
| `Interpolation` type implements the standard comparison methods. | |
| ### Support for the debug specifier (`=`) | |
| The debug specifier, `=`, is supported in template strings and behaves similarly | |
| to how it behaves in f-strings, though due to limitations of the implementation | |
| there is a slight difference. | |
| In particular, `t'{value=}'` is treated as `t'value={value!r}'`. The first | |
| static string is rewritten from `""` to `"value="` and the `conversion` | |
| defaults to `r`: | |
| ```python | |
| name = "World" | |
| template = t"Hello {name=}" | |
| assert template.strings[0] == "Hello name=" | |
| assert template.interpolations[0].value == "World" | |
| assert template.interpolations[0].conversion == "r" | |
| ``` | |
| If a conversion is explicitly provided, it is kept: `t'{value=!s}'` | |
| is treated as `t'value={value!s}'`. | |
| If a format string is provided without a conversion, the `conversion` | |
| is set to `None`: `t'{value=:fmt}'` is treated as `t'value={value:fmt}'`. | |
| Whitespace is preserved in the debug specifier, so `t'{value = }'` is | |
| treated as `t'value = {value!r}'`. | |
| ### Raw Template Strings | |
| Raw template strings are supported using the `rt` (or `tr`) prefix: | |
| ```python | |
| trade = 'shrubberies' | |
| template = rt'Did you say "{trade}"?\n' | |
| assert template.strings[0] == r'Did you say "' | |
| assert template.strings[1] == r'"?\n' | |
| ``` | |
| In this example, the `\n` is treated as two separate characters | |
| (a backslash followed by 'n') rather than a newline character. This is | |
| consistent with Python's raw string behavior. | |
| As with regular template strings, interpolations in raw template strings are | |
| processed normally, allowing for the combination of raw string behavior and | |
| dynamic content. | |
| ### Interpolation Expression Evaluation | |
| Expression evaluation for interpolations is the same as in `498#expression-evaluation`: | |
| The expressions that are extracted from the string are evaluated in the context | |
| where the template string appeared. This means the expression has full access to its | |
| lexical scope, including local and global variables. Any valid Python expression | |
| can be used, including function and method calls. | |
| Template strings are evaluated eagerly from left to right, just like f-strings. This means that | |
| interpolations are evaluated immediately when the template string is processed, not deferred | |
| or wrapped in lambdas. In the compiler this eager evaluation is driven through the abstract | |
| syntax tree and bytecode: a template literal is represented as an `ast.TemplateStr` node and | |
| each replacement field as an `ast.Interpolation` node whose evaluated expression is held in | |
| its `value` field, and the code generator emits two dedicated opcodes to assemble the objects | |
| at run time — `BUILD_INTERPOLATION` builds each `Interpolation` from its value, expression, | |
| conversion, and format spec, and `BUILD_TEMPLATE` combines the string parts and interpolations | |
| into the final `Template`. | |
| ### Exceptions | |
| Exceptions raised in t-string literals are the same as those raised in f-string | |
| literals. | |
| ### No `Template.__str__()` Implementation | |
| The `Template` type does not provide a specialized `__str__()` implementation. | |
| This is because `Template` instances are intended to be used by template processing | |
| code, which may return a string or any other type. There is no canonical way to | |
| convert a Template to a string. | |
| The `Template` and `Interpolation` types both provide useful `__repr__()` | |
| implementations. | |
| ### The `string.templatelib` Module | |
| The `string` module will be converted into a package, with a new | |
| `templatelib` submodule containing the `Template` and `Interpolation` | |
| types. Following the implementation of this PEP, this new module may be used | |
| for related functions, such as `!convert`, or potential future template | |
| processing code, such as shell script helpers. | |
| ## Examples | |
| All examples in this section of the PEP have fully tested reference implementations | |
| available in the public [pep750-examples](https://github.com/t-strings/pep750-examples) | |
| git repository. | |
| ### Example: Implementing f-strings with t-strings | |
| It is easy to "implement" f-strings using t-strings. That is, we can | |
| write a function `f(template: Template) -> str` that processes a `Template` | |
| in much the same way as an f-string literal, returning the same result: | |
| ```python | |
| name = "World" | |
| value = 42 | |
| templated = t"Hello {name!r}, value: {value:.2f}" | |
| formatted = f"Hello {name!r}, value: {value:.2f}" | |
| assert f(templated) == formatted | |
| ``` | |
| The `f()` function supports both conversion specifiers like `!r` and format | |
| specifiers like `:.2f`. The full code is fairly simple: | |
| ```python | |
| from string.templatelib import Template, Interpolation | |
| def convert(value: object, conversion: Literal["a", "r", "s"] | None) -> object: | |
| if conversion == "a": | |
| return ascii(value) | |
| elif conversion == "r": | |
| return repr(value) | |
| elif conversion == "s": | |
| return str(value) | |
| return value | |
| def f(template: Template) -> str: | |
| parts = [] | |
| for item in template: | |
| match item: | |
| case str() as s: | |
| parts.append(s) | |
| case Interpolation(value, _, conversion, format_spec): | |
| value = convert(value, conversion) | |
| value = format(value, format_spec) | |
| parts.append(value) | |
| return "".join(parts) | |
| ``` | |
| > **Note:** Example code | |
| See `fstring.py`__ and `test_fstring.py`__. | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/fstring.py | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/test_fstring.py | |
| ### Example: Structured Logging | |
| Structured logging allows developers to log data in machine-readable | |
| formats like JSON. With t-strings, developers can easily log structured data | |
| alongside human-readable messages using just a single log statement. | |
| We present two different approaches to implementing structured logging with | |
| template strings. | |
| #### Approach 1: Custom Log Messages | |
| The `Python Logging Cookbook <python:logging-cookbook>` | |
| has a short section on [how to implement structured logging](https://docs.python.org/3/howto/logging-cookbook.html#implementing-structured-logging). | |
| The logging cookbook suggests creating a new "message" class, `StructuredMessage`, | |
| that is constructed with a simple text message and a separate dictionary of values: | |
| ```python | |
| message = StructuredMessage("user action", { | |
| "action": "traded", | |
| "amount": 42, | |
| "item": "shrubs" | |
| }) | |
| logging.info(message) | |
| ## Outputs: | |
| ## user action >>> {"action": "traded", "amount": 42, "item": "shrubs"} | |
| ``` | |
| The `StructuredMessage.__str__()` method formats both the human-readable | |
| message *and* the values, combining them into a final string. (See the | |
| [logging cookbook](https://docs.python.org/3/howto/logging-cookbook.html#implementing-structured-logging) | |
| for its full example.) | |
| We can implement an improved version of `StructuredMessage` using template strings: | |
| ```python | |
| import json | |
| from string.templatelib import Interpolation, Template | |
| from typing import Mapping | |
| class TemplateMessage: | |
| def __init__(self, template: Template) -> None: | |
| self.template = template | |
| @property | |
| def message(self) -> str: | |
| # Use the f() function from the previous example | |
| return f(self.template) | |
| @property | |
| def values(self) -> Mapping[str, object]: | |
| return { | |
| item.expression: item.value | |
| for item in self.template | |
| if isinstance(item, Interpolation) | |
| } | |
| def __str__(self) -> str: | |
| return f"{self.message} >>> {json.dumps(self.values)}" | |
| _ = TemplateMessage # optional, to improve readability | |
| action, amount, item = "traded", 42, "shrubs" | |
| logging.info(_(t"User {action}: {amount:.2f} {item}")) | |
| ## Outputs: | |
| ## User traded: 42.00 shrubs >>> {"action": "traded", "amount": 42, "item": "shrubs"} | |
| ``` | |
| Template strings give us a more elegant way to define the custom message | |
| class. With template strings it is no longer necessary for developers to make | |
| sure that their format string and values dictionary are kept in sync; a single | |
| template string literal is all that is needed. The `TemplateMessage` | |
| implementation can automatically extract structured keys and values from | |
| the `Interpolation.expression` and `Interpolation.value` attributes, | |
| respectively. | |
| #### Approach 2: Custom Formatters | |
| Custom messages are a reasonable approach to structured logging but can be a | |
| little awkward. To use them, developers must wrap every log message they write | |
| in a custom class. This can be easy to forget. | |
| An alternative approach is to define custom `logging.Formatter` classes. This | |
| approach is more flexible and allows for more control over the final output. In | |
| particular, it's possible to take a single template string and output it in | |
| multiple formats (human-readable and JSON) to separate log streams. | |
| We define two simple formatters, a `MessageFormatter` for human-readable output | |
| and a `ValuesFormatter` for JSON output: | |
| ```python | |
| import json | |
| from logging import Formatter, LogRecord | |
| from string.templatelib import Interpolation, Template | |
| from typing import Any, Mapping | |
| class MessageFormatter(Formatter): | |
| def message(self, template: Template) -> str: | |
| # Use the f() function from the previous example | |
| return f(template) | |
| def format(self, record: LogRecord) -> str: | |
| msg = record.msg | |
| if not isinstance(msg, Template): | |
| return super().format(record) | |
| return self.message(msg) | |
| class ValuesFormatter(Formatter): | |
| def values(self, template: Template) -> Mapping[str, Any]: | |
| return { | |
| item.expression: item.value | |
| for item in template | |
| if isinstance(item, Interpolation) | |
| } | |
| def format(self, record: LogRecord) -> str: | |
| msg = record.msg | |
| if not isinstance(msg, Template): | |
| return super().format(record) | |
| return json.dumps(self.values(msg)) | |
| ``` | |
| We can then use these formatters when configuring our logger: | |
| ```python | |
| import logging | |
| import sys | |
| logger = logging.getLogger(__name__) | |
| message_handler = logging.StreamHandler(sys.stdout) | |
| message_handler.setFormatter(MessageFormatter()) | |
| logger.addHandler(message_handler) | |
| values_handler = logging.StreamHandler(sys.stderr) | |
| values_handler.setFormatter(ValuesFormatter()) | |
| logger.addHandler(values_handler) | |
| action, amount, item = "traded", 42, "shrubs" | |
| logger.info(t"User {action}: {amount:.2f} {item}") | |
| ## Outputs to sys.stdout: | |
| ## User traded: 42.00 shrubs | |
| ## At the same time, outputs to sys.stderr: | |
| ## {"action": "traded", "amount": 42, "item": "shrubs"} | |
| ``` | |
| This approach has a couple advantages over the custom message approach to structured | |
| logging: | |
| - Developers can log a t-string directly without wrapping it in a custom class. | |
| - Human-readable and structured output can be sent to separate log streams. This | |
| is useful for log aggregation systems that process structured data independently | |
| from human-readable data. | |
| > **Note:** Example code | |
| See `logging.py`__ and `test_logging.py`__. | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/logging.py | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/test_logging.py | |
| ### Example: HTML Templating | |
| This PEP contains several short HTML templating examples. It turns out that the | |
| "hypothetical" `html()` function mentioned in the `Motivation`_ section | |
| (and a few other places in this PEP) exists and is available in the | |
| [pep750-examples repository](https://github.com/t-strings/pep750-examples/). | |
| If you're thinking about parsing a complex grammar with template strings, we | |
| hope you'll find it useful. | |
| ## Backwards Compatibility | |
| Like f-strings, use of template strings will be a syntactic backwards incompatibility | |
| with previous versions. | |
| ## Security Implications | |
| The security implications of working with template strings, with respect to | |
| interpolations, are as follows: | |
| 1. Scope lookup is the same as f-strings (lexical scope). This model has been | |
| shown to work well in practice. | |
| 2. Code that processes `Template` instances can ensure that any interpolations | |
| are processed in a safe fashion, including respecting the context in which | |
| they appear. | |
| ## How To Teach This | |
| Template strings have several audiences: | |
| - Developers using template strings and processing functions | |
| - Authors of template processing code | |
| - Framework authors who build interesting machinery with template strings | |
| We hope that teaching developers will be straightforward. At a glance, | |
| template strings look just like f-strings. Their syntax is familiar and the | |
| scoping rules remain the same. | |
| The first thing developers must learn is that template string literals don't | |
| evaluate to strings; instead, they evaluate to a new type, `Template`. This | |
| is a simple type intended to be used by template processing code. It's not until | |
| developers call a processing function that they get the result they want: | |
| typically, a string, although processing code can of course return any arbitrary | |
| type. | |
| Developers will also want to understand how template strings relate to other | |
| string formatting methods like f-strings and `str.format`. They will need | |
| to decide when to use each method. If a simple string is all that is needed, and | |
| there are no security implications, f-strings are likely the best choice. For | |
| most cases where a format string is used, it can be replaced with a function | |
| wrapping the creation of a template string. In cases where the format string is | |
| obtained from user input, the filesystem, or databases, it is possible to write | |
| code to convert it into a `Template` instance if desired. | |
| Because developers will learn that t-strings are nearly always used in tandem | |
| with processing functions, they don't necessarily need to understand the details | |
| of the `Template` type. As with descriptors and decorators, we expect many more | |
| developers will use t-strings than write t-string processing functions. | |
| Over time, a small number of more advanced developers *will* wish to author their | |
| own template processing code. Writing processing code often requires thinking | |
| in terms of formal grammars. Developers will need to learn how to work with the | |
| `strings` and `interpolation` attributes of a `Template` instance and how | |
| to process interpolations in a context-sensitive fashion. More sophisticated | |
| grammars will likely require parsing to intermediate representations like an | |
| abstract syntax tree (AST). Great template processing code will handle format | |
| specifiers and conversions when appropriate. Writing production-grade template | |
| processing code -- for instance, to support HTML templates -- can be a large | |
| undertaking. | |
| We expect that template strings will provide framework authors with a powerful | |
| new tool in their toolbox. While the functionality of template strings overlaps | |
| with existing tools like template engines, t-strings move that logic into | |
| the language itself. Bringing the full power and generality of Python to bear on | |
| string processing tasks opens new possibilities for framework authors. | |
| ## Why another templating approach? | |
| The world of Python already has mature templating languages with wide adoption, | |
| such as Jinja. Why build support for creating new templating systems? | |
| Projects such as Jinja are still needed in cases where the template is less part | |
| of the software by the developers, and more part of customization by designers | |
| or even content created by users, for example in a CMS. | |
| The trends in frontend development have treated templating as part of the | |
| software and written by developers. They want modern language features and a | |
| good tooling experience. PEP 750 envisions DSLs where the non-static parts are | |
| Python: same scope rules, typing, expression syntax, and the like. | |
| ## Common Patterns Seen in Processing Templates | |
| ### Structural Pattern Matching | |
| Iterating over the `Template` with structural pattern matching is the expected | |
| best practice for many template function implementations: | |
| ```python | |
| from string.templatelib import Template, Interpolation | |
| def process(template: Template) -> Any: | |
| for item in template: | |
| match item: | |
| case str() as s: | |
| ... # handle each string part | |
| case Interpolation() as interpolation: | |
| ... # handle each interpolation | |
| ``` | |
| Processing code may also commonly sub-match on attributes of the `Interpolation` type: | |
| ```python | |
| match arg: | |
| case Interpolation(int()): | |
| ... # handle interpolations with integer values | |
| case Interpolation(value=str() as s): | |
| ... # handle interpolations with string values | |
| # etc. | |
| ``` | |
| ### Memoizing | |
| Template functions can efficiently process both static and dynamic parts of templates. | |
| The structure of `Template` objects allows for effective memoization: | |
| ```python | |
| strings = template.strings # Static string parts | |
| values = template.values # Dynamic interpolated values | |
| ``` | |
| This separation enables caching of processed static parts while dynamic parts | |
| can be inserted as needed. Authors of template processing code can use the static | |
| `strings` as cache keys, leading to significant performance improvements when | |
| similar templates are used repeatedly. | |
| ### Parsing to Intermediate Representations | |
| Code that processes templates can parse the template string into intermediate | |
| representations, like an AST. We expect that many template processing libraries | |
| will use this approach. | |
| For instance, rather than returning a `str`, our theoretical `html()` function | |
| (see the `Motivation`_ section) could return an HTML `Element` defined in the | |
| same package: | |
| ```python | |
| @dataclass(frozen=True) | |
| class Element: | |
| tag: str | |
| attributes: Mapping[str, str | bool] | |
| children: Sequence[str | Element] | |
| def __str__(self) -> str: | |
| ... | |
| def html(template: Template) -> Element: | |
| ... | |
| ``` | |
| Calling `str(element)` would then render the HTML but, in the meantime, the | |
| `Element` could be manipulated in a variety of ways. | |
| ### Context-sensitive Processing of Interpolations | |
| Continuing with our hypothetical `html()` function, it could be made | |
| context-sensitive. Interpolations could be processed differently depending | |
| on where they appear in the template. | |
| For example, our `html()` function could support multiple kinds of | |
| interpolations: | |
| ```python | |
| attributes = {"id": "main"} | |
| attribute_value = "shrubbery" | |
| content = "hello" | |
| template = t"<div {attributes} data-value={attribute_value}>{content}</div>" | |
| element = html(template) | |
| assert str(element) == '<div id="main" data-value="shrubbery">hello</div>' | |
| ``` | |
| Because the `{attributes}` interpolation occurs in the context of an HTML tag, | |
| and because there is no corresponding attribute name, it is treated as a dictionary | |
| of attributes. The `{attribute_value}` interpolation is treated as a simple | |
| string value and is quoted before inclusion in the final string. The | |
| `{content}` interpolation is treated as potentially unsafe content and is | |
| escaped before inclusion in the final string. | |
| ### Nested Template Strings | |
| Going a step further with our `html()` function, we could support nested | |
| template strings. This would allow for more complex HTML structures to be | |
| built up from simpler templates: | |
| ```python | |
| name = "World" | |
| content = html(t"<p>Hello {name}</p>") | |
| template = t"<div>{content}</div>" | |
| element = html(template) | |
| assert str(element) == '<div><p>Hello World</p></div>' | |
| ``` | |
| Because the `{content}` interpolation is an `Element` instance, it does | |
| not need to be escaped before inclusion in the final string. | |
| One could imagine a nice simplification: if the `html()` function is passed | |
| a `Template` instance, it could automatically convert it to an `Element` | |
| by recursively calling itself on the nested template. | |
| We expect that nesting and composition of templates will be a common pattern | |
| in template processing code and, where appropriate, used in preference to | |
| simple string concatenation. | |
| ### Approaches to Lazy Evaluation | |
| Like f-strings, interpolations in t-string literals are eagerly evaluated. However, | |
| there are cases where lazy evaluation may be desirable. | |
| If a single interpolation is expensive to evaluate, it can be explicitly wrapped | |
| in a `lambda` in the template string literal: | |
| ```python | |
| name = "World" | |
| template = t"Hello {(lambda: name)}" | |
| assert callable(template.interpolations[0].value) | |
| assert template.interpolations[0].value() == "World" | |
| ``` | |
| This assumes, of course, that template processing code anticipates and handles | |
| callable interpolation values. (One could imagine also supporting iterators, | |
| awaitables, etc.) This is not a requirement of the PEP, but it is a common | |
| pattern in template processing code. | |
| In general, we hope that the community will develop best practices for lazy | |
| evaluation of interpolations in template strings and that, when it makes sense, | |
| common libraries will provide support for callable or awaitable values in | |
| their template processing code. | |
| ### Approaches to Asynchronous Evaluation | |
| Closely related to lazy evaluation is asynchronous evaluation. | |
| As with f-strings, the `await` keyword is allowed in interpolations: | |
| ```python | |
| async def example(): | |
| async def get_name() -> str: | |
| await asyncio.sleep(1) | |
| return "Sleepy" | |
| template = t"Hello {await get_name()}" | |
| # Use the f() function from the f-string example, above | |
| assert f(template) == "Hello Sleepy" | |
| ``` | |
| More sophisticated template processing code can take advantage of this to | |
| perform asynchronous operations in interpolations. For example, a "smart" | |
| processing function could anticipate that an interpolation is an awaitable | |
| and await it before processing the template string: | |
| ```python | |
| async def example(): | |
| async def get_name() -> str: | |
| await asyncio.sleep(1) | |
| return "Sleepy" | |
| template = t"Hello {get_name}" | |
| assert await async_f(template) == "Hello Sleepy" | |
| ``` | |
| This assumes that the template processing code in `async_f()` is asynchronous | |
| and is able to `await` an interpolation's value. | |
| > **Note:** Example code | |
| See `afstring.py`__ and `test_afstring.py`__. | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/afstring.py | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/test_afstring.py | |
| ### Approaches to Template Reuse | |
| If developers wish to reuse template strings multiple times with different | |
| values, they can write a function to return a `Template` instance: | |
| ```python | |
| def reusable(name: str, question: str) -> Template: | |
| return t"Hello {name}, {question}?" | |
| template = reusable("friend", "how are you") | |
| template = reusable("King Arthur", "what is your quest") | |
| ``` | |
| This is, of course, no different from how f-strings can be reused. | |
| ### Relation to Format Strings | |
| The venerable `str.format` method accepts format strings that can later | |
| be used to format values: | |
| ```python | |
| alas_fmt = "We're all out of {cheese}." | |
| assert alas_fmt.format(cheese="Red Leicester") == "We're all out of Red Leicester." | |
| ``` | |
| If one squints, one can think of format strings as a kind of function definition. | |
| The *call* to `str.format` can be seen as a kind of function call. The | |
| t-string equivalent is to simply define a standard Python function that returns | |
| a `Template` instance: | |
| ```python | |
| def make_template(*, cheese: str) -> Template: | |
| return t"We're all out of {cheese}." | |
| template = make_template(cheese="Red Leicester") | |
| ## Using the f() function from the f-string example, above | |
| assert f(template) == "We're all out of Red Leicester." | |
| ``` | |
| The `make_template()` function itself can be thought of as analogous to the | |
| format string. The call to `make_template()` is analogous to the call to | |
| `str.format`. | |
| Of course, it is common to load format strings from external sources like a | |
| filesystem or database. Thankfully, because `Template` and `Interpolation` | |
| are simple Python types, it is possible to write a function that takes an | |
| old-style format string and returns an equivalent `Template` instance: | |
| ```python | |
| def from_format(fmt: str, /, *args: object, **kwargs: object) -> Template: | |
| """Parse `fmt` and return a `Template` instance.""" | |
| ... | |
| # Load this from a file, database, etc. | |
| fmt = "We're all out of {cheese}." | |
| template = from_format(fmt, cheese="Red Leicester") | |
| # Using the f() function from the f-string example, above | |
| assert f(template) == "We're all out of Red Leicester." | |
| ``` | |
| This is a powerful pattern that allows developers to use template strings in | |
| places where they might have previously used format strings. A full implementation | |
| of `from_format()` is available in the examples repository, | |
| which supports the full grammar of format strings. | |
| > **Note:** Example code | |
| See `format.py`__ and `test_format.py`__. | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/format.py | |
| __ https://github.com/t-strings/pep750-examples/blob/main/pep/test_format.py | |
| ## Rejected Ideas | |
| This PEP has been through several significant revisions. In addition, quite a few interesting | |
| ideas were considered both in revisions of PEP 501 and in the [Discourse discussion](https://discuss.python.org/t/pep-750-tag-strings-for-writing-domain-specific-languages/60408/196). | |
| We attempt to document the most significant ideas that were considered and rejected. | |
| ### Arbitrary String Literal Prefixes | |
| Inspired by [JavaScript tagged template literals](https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Template_literals#tagged_templates), | |
| an earlier version of this PEP allowed for arbitrary "tag" prefixes in front | |
| of literal strings: | |
| ```python | |
| my_tag'Hello {name}' | |
| ``` | |
| The prefix was a special callable called a "tag function". Tag functions | |
| received the parts of the template string in an argument list. They could then | |
| process the string and return an arbitrary value: | |
| ```python | |
| def my_tag(*args: str | Interpolation) -> Any: | |
| ... | |
| ``` | |
| This approach was rejected for several reasons: | |
| - It was deemed too complex to build in full generality. JavaScript allows for | |
| arbitrary expressions to precede a template string, which is a significant | |
| challenge to implement in Python. | |
| - It precluded future introduction of new string prefixes. | |
| - It seemed to needlessly pollute the namespace. | |
| Use of a single `t` prefix was chosen as a simpler, more Pythonic approach and | |
| more in keeping with template strings' role as a generalization of f-strings. | |
| ### Delayed Evaluation of Interpolations | |
| An early version of this PEP proposed that interpolations should be lazily | |
| evaluated. All interpolations were "wrapped" in implicit lambdas. Instead of | |
| having an eagerly evaluated `value` attribute, interpolations had a | |
| `getvalue()` method that would resolve the value of the interpolation: | |
| ```python | |
| class Interpolation: | |
| ... | |
| _value: Callable[[], object] | |
| def getvalue(self) -> object: | |
| return self._value() | |
| ``` | |
| This was rejected for several reasons: | |
| - The overwhelming majority of use cases for template strings naturally call | |
| for immediate evaluation. | |
| - Delayed evaluation would be a significant departure from the behavior of | |
| f-strings. | |
| - Implicit lambda wrapping leads to difficulties with type hints and | |
| static analysis. | |
| Most importantly, there are viable (if imperfect) alternatives to implicit | |
| lambda wrapping in many cases where lazy evaluation is desired. See the section | |
| on `Approaches to Lazy Evaluation`_, above, for more information. | |
| While delayed evaluation was rejected for *this* PEP, we hope that the community | |
| continues to explore the idea. | |
| ### Making `Template` and `Interpolation` Into Protocols | |
| An early version of this PEP proposed that the `Template` and `Interpolation` | |
| types be runtime checkable protocols rather than classes. | |
| In the end, we felt that using classes was more straightforward. | |
| ### Overridden `__eq__` and `__hash__` for `Template` and `Interpolation` | |
| Earlier versions of this PEP proposed that the `Template` and `Interpolation` | |
| types should have their own implementations of `__eq__` and `__hash__`. | |
| `Templates` were considered equal if their `strings` and `interpolations` | |
| were equal; `Interpolations` were considered equal if their `value`, | |
| `expression`, `conversion`, and `format_spec` were equal. Interpolation | |
| hashing was similar to tuple hashing: an `Interpolation` was hashable if and | |
| only if its `value` was hashable. | |
| This was rejected because `Template.__hash__` so defined was not useful as a | |
| cache key in template processing code; we were concerned that it would be | |
| confusing to developers. | |
| By dropping these implementations of `__eq__` and `__hash__`, we lose the | |
| ability to write asserts such as: | |
| ```python | |
| name = "World" | |
| assert t"Hello " + t"{name}" == t"Hello {name}" | |
| ``` | |
| Because `Template` instances are intended to be quickly processed by further | |
| code, we felt that the utility of these asserts was limited. | |
| ### An Additional `Decoded` Type | |
| An early version of this PEP proposed an additional type, `Decoded`, to represent | |
| the "static string" parts of a template string. This type derived from `str` and | |
| had a single extra `raw` attribute that provided the original text of the string. | |
| We rejected this in favor of the simpler approach of using plain `str` and | |
| allowing combination of `r` and `t` prefixes. | |
| ### The Final Home for `Template` and `Interpolation` | |
| Previous versions of this PEP proposed placing the `Template` and | |
| `Interpolation` types in: `types`, `collections`, `collections.abc`, | |
| and even in a new top-level module, `templatelib`. The final decision was to | |
| place them in `string.templatelib`. | |
| ### Enable Full Reconstruction of Original Template Literal | |
| Earlier versions of this PEP attempted to make it possible to fully reconstruct | |
| the text of the original template string from a `Template` instance. This was | |
| rejected as being overly complex. The mapping between template literal source | |
| and the underlying AST is not one-to-one and there are several limitations with | |
| respect to round-tripping to the original source text. | |
| First, `Interpolation.format_spec` defaults to `""` if not provided: | |
| ```python | |
| value = 42 | |
| template1 = t"{value}" | |
| template2 = t"{value:}" | |
| assert template1.interpolations[0].format_spec == "" | |
| assert template2.interpolations[0].format_spec == "" | |
| ``` | |
| Next, the debug specifier, `=`, is treated as a special case and is processed | |
| before the AST is created. It is therefore not possible to distinguish | |
| `t"{value=}"` from `t"value={value!r}"`: | |
| ```python | |
| value = 42 | |
| template1 = t"{value=}" | |
| template2 = t"value={value!r}" | |
| assert template1.strings[0] == "value=" | |
| assert template1.interpolations[0].expression == "value" | |
| assert template1.interpolations[0].conversion == "r" | |
| assert template2.strings[0] == "value=" | |
| assert template2.interpolations[0].expression == "value" | |
| assert template2.interpolations[0].conversion == "r" | |
| ``` | |
| Finally, format specifiers in f-strings allow arbitrary nesting. In this PEP | |
| and in the reference implementation, the specifier is eagerly evaluated to | |
| set the `format_spec` in the `Interpolation`, thereby losing the original | |
| expressions. For example: | |
| ```python | |
| value = 42 | |
| precision = 2 | |
| template1 = t"{value:.2f}" | |
| template2 = t"{value:.{precision}f}" | |
| assert template1.interpolations[0].format_spec == ".2f" | |
| assert template2.interpolations[0].format_spec == ".2f" | |
| ``` | |
| We do not anticipate that these limitations will be a significant issue in practice. | |
| Developers who need to obtain the original template string literal can always | |
| use `inspect.getsource()` or similar tools. | |
| ### Disallowing Template Concatenation | |
| Earlier versions of this PEP proposed that `Template` instances should not | |
| support concatenation. This was rejected in favor of allowing concatenating | |
| multiple `Template` instances. | |
| There are reasonable arguments in favor of rejecting one or all forms of | |
| concatenation: namely, that it cuts off a class of potential bugs, particularly | |
| when one takes the view that template strings will often contain complex grammars | |
| for which concatenation doesn't always have the same meaning (or any meaning). | |
| Moreover, the earliest versions of this PEP proposed a syntax closer to | |
| JavaScript's tagged template literals, where an arbitrary callable could be used | |
| as a prefix to a string literal. There was no guarantee that the callable would | |
| return a type that supported concatenation. | |
| In the end, we decided that the surprise to developers of a new string type | |
| *not* supporting concatenation was likely to be greater than the theoretical | |
| harm caused by supporting it. | |
| While the final version of this PEP disallows concatenation of a `Template` and a | |
| `str`, the implementation targeted by this task (PR-132662) *does* support it: | |
| `Template + str` appends the `str` as a static string part and `str + Template` | |
| prepends it, both returning a new `Template` (see the Template String Concatenation | |
| section above). | |
| We expect that code that uses template strings will more commonly build up | |
| larger templates through nesting and composition rather than concatenation. | |
| ### Arbitrary Conversion Values | |
| Python allows only `r`, `s`, or `a` as possible conversion type values. | |
| Trying to assign a different value results in `SyntaxError`. | |
| In theory, template functions could choose to handle other conversion types. But this | |
| PEP adheres closely to PEP 701. Any changes to allowed values should be in a | |
| separate PEP. | |
| ### Removing `conversion` From `Interpolation` | |
| While drafting this PEP, we considered removing the `conversion` | |
| attribute from `Interpolation` and specifying that the conversion should be | |
| performed eagerly, before `Interpolation.value` is set. | |
| This was done to simplify the work of writing template processing code. The | |
| `conversion` attribute is of limited extensibility (it is typed as | |
| `Literal["r", "s", "a"] | None`). It is not clear that it adds significant | |
| value or flexibility to template strings that couldn't better be achieved with | |
| custom format specifiers. Unlike with format specifiers, there is no | |
| equivalent to Python's `python:format` built-in. (Instead, we include a | |
| sample implementation of `convert()` in the `Examples`_ section.) | |
| Ultimately we decided to keep the `conversion` attribute in the | |
| `Interpolation` type to maintain compatibility with f-strings and to allow | |
| for future extensibility. | |
| ### Alternate Interpolation Symbols | |
| In the early stages of this PEP, we considered allowing alternate symbols for | |
| interpolations in template strings. For example, we considered allowing | |
| `${name}` as an alternative to `{name}` with the idea that it might be useful | |
| for i18n or other purposes. See the | |
| [Discourse thread](https://discuss.python.org/t/pep-750-tag-strings-for-writing-domain-specific-languages/60408/122) | |
| for more information. | |
| This was rejected in favor of keeping t-string syntax as close to f-string syntax | |
| as possible. | |
| ### Alternate Layouts for `Template` | |
| During the development of this PEP, we considered several alternate layouts for | |
| the `Template` type. Many focused on a single `args` tuple that contained | |
| both strings and interpolations. Variants included: | |
| - `args` was a `tuple[str | Interpolation, ...]`` with the promise that | |
| its first and last items were strings and that strings and interpolations | |
| always alternated. This implied that `args` was always non-empty and that | |
| empty strings would be inserted between neighboring interpolations. This was | |
| rejected because alternation could not be captured by the type system and was | |
| not a guarantee we wished to make. | |
| - `args` remained a `tuple[str | Interpolation, ...]` but did not support | |
| interleaving. As a result, empty strings were not added to the sequence. It | |
| was no longer possible to obtain static strings with `args[::2]`; instead, | |
| instance checks or structural pattern matching had to be used to distinguish | |
| between strings and interpolations. This approach was rejected as offering | |
| less future opportunity for performance optimization. | |
| - `args` was typed as a `Sequence[tuple[str, Interpolation | None]]`. Each | |
| static string was paired with is neighboring interpolation. The final | |
| string part had no corresponding interpolation. This was rejected as being | |
| overly complex. | |
| ### Mechanism to Describe the "Kind" of Template | |
| If t-strings prove popular, it may be useful to have a way to describe the | |
| "kind" of content found in a template string: "sql", "html", "css", etc. | |
| This could enable powerful new features in tools such as linters, formatters, | |
| type checkers, and IDEs. (Imagine, for example, `black` formatting HTML in | |
| t-strings, or `mypy` checking whether a given attribute is valid for an HTML | |
| tag.) While exciting, this PEP does not propose any specific mechanism. It is | |
| our hope that, over time, the community will develop conventions for this purpose. | |
| ### Binary Template Strings | |
| The combination of t-strings and bytes (`tb`) is considered out of scope for | |
| this PEP. However, unlike f-strings, there is no fundamental reason why t-strings | |
| and bytes cannot be combined. Support could be considered in a future PEP. | |