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/*
* Copyright Amazon.com, Inc. or its affiliates. All Rights Reserved.
* SPDX-License-Identifier: Apache-2.0
*/
//! ByteStream Abstractions
//!
//! When the SDK returns streaming binary data, the inner Http Body is wrapped in [ByteStream](crate::byte_stream::ByteStream). ByteStream provides misuse-resistant
//! primitives to make it easier to handle common patterns with streaming data.
//!
//! # Examples
//!
//! ### Writing a ByteStream into a file:
//! ```no_run
//! use aws_smithy_http::byte_stream::ByteStream;
//! use std::error::Error;
//! use tokio::fs::File;
//! use tokio::io::AsyncWriteExt;
//! struct SynthesizeSpeechOutput {
//! audio_stream: ByteStream,
//! }
//!
//! async fn audio_to_file(
//! output: SynthesizeSpeechOutput,
//! ) -> Result<(), Box<dyn Error + Send + Sync>> {
//! let mut buf = output.audio_stream.collect().await?;
//! let mut file = File::open("audio.mp3").await?;
//! file.write_all_buf(&mut buf).await?;
//! file.flush().await?;
//! Ok(())
//! }
//! ```
//!
//! ### Converting a ByteStream into Bytes
//! ```no_run
//! use bytes::Bytes;
//! use aws_smithy_http::byte_stream::ByteStream;
//! use std::error::Error;
//! struct SynthesizeSpeechOutput {
//! audio_stream: ByteStream,
//! }
//! async fn load_audio(
//! output: SynthesizeSpeechOutput,
//! ) -> Result<Bytes, Box<dyn Error + Send + Sync>> {
//! Ok(output.audio_stream.collect().await?.into_bytes())
//! }
//! ```
//!
//! ### Stream a ByteStream into a file
//! The previous example is recommended in cases where loading the entire file into memory first is desirable. For extremely large
//! files, you may wish to stream the data directly to the file system, chunk by chunk. This is posible using the `futures::Stream` implementation.
//!
//! ```no_run
//! use bytes::{Buf, Bytes};
//! use aws_smithy_http::byte_stream::ByteStream;
//! use std::error::Error;
//! use tokio::fs::File;
//! use tokio::io::AsyncWriteExt;
//! use tokio_stream::StreamExt;
//! struct SynthesizeSpeechOutput {
//! audio_stream: ByteStream,
//! }
//!
//! async fn audio_to_file(
//! output: SynthesizeSpeechOutput,
//! ) -> Result<(), Box<dyn Error + Send + Sync>> {
//! let mut file = File::open("audio.mp3").await?;
//! let mut stream = output.audio_stream;
//! while let Some(bytes) = stream.next().await {
//! let bytes: Bytes = bytes?;
//! file.write_all(&bytes).await?;
//! }
//! file.flush().await?;
//! Ok(())
//! }
//! ```
//!
//! ### Create a ByteStream from a file
//!
//! _Note: This is only available with `rt-tokio` enabled._
//!
//! ```no_run
//! # #[cfg(feature = "rt-tokio")]
//! # {
//! use aws_smithy_http::byte_stream::ByteStream;
//! use std::path::Path;
//! struct GetObjectInput {
//! body: ByteStream
//! }
//!
//! async fn bytestream_from_file() -> GetObjectInput {
//! let bytestream = ByteStream::from_path("docs/some-large-file.csv")
//! .await
//! .expect("valid path");
//! GetObjectInput { body: bytestream }
//! }
//! # }
//! ```
//!
//! If you want more control over how the file is read, such as specifying the size of the buffer used to read the file
//! or the length of the file, use an [`FsBuilder`](crate::byte_stream::FsBuilder).
//!
//! ```no_run
//! # #[cfg(feature = "rt-tokio")]
//! # {
//! use aws_smithy_http::byte_stream::{ByteStream, Length};
//! use std::path::Path;
//! struct GetObjectInput {
//! body: ByteStream
//! }
//!
//! async fn bytestream_from_file() -> GetObjectInput {
//! let bytestream = ByteStream::read_from().path("docs/some-large-file.csv")
//! .buffer_size(32_784)
//! .length(Length::Exact(123_456))
//! .build()
//! .await
//! .expect("valid path");
//! GetObjectInput { body: bytestream }
//! }
//! # }
//! ```
use crate::body::SdkBody;
use crate::byte_stream::error::Error;
use bytes::Buf;
use bytes::Bytes;
use bytes_utils::SegmentedBuf;
use http_body::Body;
use pin_project_lite::pin_project;
use std::io::IoSlice;
use std::pin::Pin;
use std::task::{Context, Poll};
#[cfg(feature = "rt-tokio")]
mod bytestream_util;
#[cfg(feature = "rt-tokio")]
pub use bytestream_util::Length;
pub mod error;
#[cfg(feature = "rt-tokio")]
pub use self::bytestream_util::FsBuilder;
pin_project! {
/// Stream of binary data
///
/// `ByteStream` wraps a stream of binary data for ease of use.
///
/// ## Getting data out of a `ByteStream`
///
/// `ByteStream` provides two primary mechanisms for accessing the data:
/// 1. With `.collect()`:
///
/// [`.collect()`](crate::byte_stream::ByteStream::collect) reads the complete ByteStream into memory and stores it in `AggregatedBytes`,
/// a non-contiguous ByteBuffer.
/// ```no_run
/// use aws_smithy_http::byte_stream::{ByteStream, AggregatedBytes};
/// use aws_smithy_http::body::SdkBody;
/// use bytes::Buf;
/// async fn example() {
/// let stream = ByteStream::new(SdkBody::from("hello! This is some data"));
/// // Load data from the stream into memory:
/// let data = stream.collect().await.expect("error reading data");
/// // collect returns a `bytes::Buf`:
/// println!("first chunk: {:?}", data.chunk());
/// }
/// ```
/// 2. Via [`impl Stream`](futures_core::Stream):
///
/// _Note: An import of `StreamExt` is required to use `.try_next()`._
///
/// For use-cases where holding the entire ByteStream in memory is unnecessary, use the
/// `Stream` implementation:
/// ```no_run
/// # mod crc32 {
/// # pub struct Digest { }
/// # impl Digest {
/// # pub fn new() -> Self { Digest {} }
/// # pub fn write(&mut self, b: &[u8]) { }
/// # pub fn finish(&self) -> u64 { 6 }
/// # }
/// # }
/// use aws_smithy_http::byte_stream::{ByteStream, AggregatedBytes, error::Error};
/// use aws_smithy_http::body::SdkBody;
/// use tokio_stream::StreamExt;
///
/// async fn example() -> Result<(), Error> {
/// let mut stream = ByteStream::from(vec![1, 2, 3, 4, 5, 99]);
/// let mut digest = crc32::Digest::new();
/// while let Some(bytes) = stream.try_next().await? {
/// digest.write(&bytes);
/// }
/// println!("digest: {}", digest.finish());
/// Ok(())
/// }
/// ```
///
/// 3. Via [`.into_async_read()`](crate::byte_stream::ByteStream::into_async_read):
///
/// _Note: The `rt-tokio` feature must be active to use `.into_async_read()`._
///
/// It's possible to convert a `ByteStream` into a struct that implements [`tokio::io::AsyncRead`](tokio::io::AsyncRead).
/// Then, you can use pre-existing tools like [`tokio::io::BufReader`](tokio::io::BufReader):
/// ```no_run
/// use aws_smithy_http::byte_stream::ByteStream;
/// use aws_smithy_http::body::SdkBody;
/// use tokio::io::{AsyncBufReadExt, BufReader};
/// #[cfg(feature = "rt-tokio")]
/// async fn example() -> std::io::Result<()> {
/// let stream = ByteStream::new(SdkBody::from("hello!\nThis is some data"));
/// // Wrap the stream in a BufReader
/// let buf_reader = BufReader::new(stream.into_async_read());
/// let mut lines = buf_reader.lines();
/// assert_eq!(lines.next_line().await?, Some("hello!".to_owned()));
/// assert_eq!(lines.next_line().await?, Some("This is some data".to_owned()));
/// assert_eq!(lines.next_line().await?, None);
/// Ok(())
/// }
/// ```
///
/// ## Getting data into a ByteStream
/// ByteStreams can be created in one of three ways:
/// 1. **From in-memory binary data**: ByteStreams created from in-memory data are always retryable. Data
/// will be converted into `Bytes` enabling a cheap clone during retries.
/// ```no_run
/// use bytes::Bytes;
/// use aws_smithy_http::byte_stream::ByteStream;
/// let stream = ByteStream::from(vec![1,2,3]);
/// let stream = ByteStream::from(Bytes::from_static(b"hello!"));
/// ```
///
/// 2. **From a file**: ByteStreams created from a path can be retried. A new file descriptor will be opened if a retry occurs.
/// ```no_run
/// #[cfg(feature = "tokio-rt")]
/// # {
/// use aws_smithy_http::byte_stream::ByteStream;
/// let stream = ByteStream::from_path("big_file.csv");
/// # }
/// ```
///
/// 3. **From an `SdkBody` directly**: For more advanced / custom use cases, a ByteStream can be created directly
/// from an SdkBody. **When created from an SdkBody, care must be taken to ensure retriability.** An SdkBody is retryable
/// when constructed from in-memory data or when using [`SdkBody::retryable`](crate::body::SdkBody::retryable).
/// ```no_run
/// use aws_smithy_http::byte_stream::ByteStream;
/// use aws_smithy_http::body::SdkBody;
/// use bytes::Bytes;
/// let (mut tx, channel_body) = hyper::Body::channel();
/// // this will not be retryable because the SDK has no way to replay this stream
/// let stream = ByteStream::new(SdkBody::from(channel_body));
/// tx.send_data(Bytes::from_static(b"hello world!"));
/// tx.send_data(Bytes::from_static(b"hello again!"));
/// // NOTE! You must ensure that `tx` is dropped to ensure that EOF is sent
/// ```
///
#[derive(Debug)]
pub struct ByteStream {
#[pin]
inner: Inner<SdkBody>
}
}
impl ByteStream {
/// Create a new `ByteStream` from an [`SdkBody`].
pub fn new(body: SdkBody) -> Self {
Self {
inner: Inner::new(body),
}
}
/// Create a new `ByteStream` from a static byte slice.
pub fn from_static(bytes: &'static [u8]) -> Self {
Self {
inner: Inner::new(SdkBody::from(Bytes::from_static(bytes))),
}
}
/// Consumes the ByteStream, returning the wrapped SdkBody
// Backwards compatibility note: Because SdkBody has a dyn variant,
// we will always be able to implement this method, even if we stop using
// SdkBody as the internal representation
pub fn into_inner(self) -> SdkBody {
self.inner.body
}
/// Read all the data from this `ByteStream` into memory
///
/// If an error in the underlying stream is encountered, `ByteStreamError` is returned.
///
/// Data is read into an `AggregatedBytes` that stores data non-contiguously as it was received
/// over the network. If a contiguous slice is required, use `into_bytes()`.
/// ```no_run
/// use bytes::Bytes;
/// use aws_smithy_http::body;
/// use aws_smithy_http::body::SdkBody;
/// use aws_smithy_http::byte_stream::{ByteStream, error::Error};
/// async fn get_data() {
/// let stream = ByteStream::new(SdkBody::from("hello!"));
/// let data: Result<Bytes, Error> = stream.collect().await.map(|data| data.into_bytes());
/// }
/// ```
pub async fn collect(self) -> Result<AggregatedBytes, Error> {
self.inner.collect().await.map_err(Error::streaming)
}
/// Returns a [`FsBuilder`](crate::byte_stream::FsBuilder), allowing you to build a `ByteStream` with
/// full control over how the file is read (eg. specifying the length of the file or the size of the buffer used to read the file).
/// ```no_run
/// # #[cfg(feature = "rt-tokio")]
/// # {
/// use aws_smithy_http::byte_stream::{ByteStream, Length};
///
/// async fn bytestream_from_file() -> ByteStream {
/// let bytestream = ByteStream::read_from()
/// .path("docs/some-large-file.csv")
/// // Specify the size of the buffer used to read the file (in bytes, default is 4096)
/// .buffer_size(32_784)
/// // Specify the length of the file used (skips an additional call to retrieve the size)
/// .length(Length::Exact(123_456))
/// .build()
/// .await
/// .expect("valid path");
/// bytestream
/// }
/// # }
/// ```
#[cfg(feature = "rt-tokio")]
#[cfg_attr(docsrs, doc(cfg(feature = "rt-tokio")))]
pub fn read_from() -> FsBuilder {
FsBuilder::new()
}
/// Create a ByteStream that streams data from the filesystem
///
/// This function creates a retryable ByteStream for a given `path`. The returned ByteStream
/// will provide a size hint when used as an HTTP body. If the request fails, the read will
/// begin again by reloading the file handle.
///
/// ## Warning
/// The contents of the file MUST not change during retries. The length & checksum of the file
/// will be cached. If the contents of the file change, the operation will almost certainly fail.
///
/// Furthermore, a partial write MAY seek in the file and resume from the previous location.
///
/// Note: If you want more control, such as specifying the size of the buffer used to read the file
/// or the length of the file, use a [`FsBuilder`](crate::byte_stream::FsBuilder) as returned
/// from `ByteStream::read_from`
///
/// # Examples
/// ```no_run
/// use aws_smithy_http::byte_stream::ByteStream;
/// use std::path::Path;
/// async fn make_bytestream() -> ByteStream {
/// ByteStream::from_path("docs/rows.csv").await.expect("file should be readable")
/// }
/// ```
#[cfg(feature = "rt-tokio")]
#[cfg_attr(docsrs, doc(cfg(feature = "rt-tokio")))]
pub async fn from_path(path: impl AsRef<std::path::Path>) -> Result<Self, Error> {
FsBuilder::new().path(path).build().await
}
/// Create a ByteStream from a file
///
/// NOTE: This will NOT result in a retryable ByteStream. For a ByteStream that can be retried in the case of
/// upstream failures, use [`ByteStream::from_path`](ByteStream::from_path)
#[deprecated(
since = "0.40.0",
note = "Prefer the more extensible ByteStream::read_from() API"
)]
#[cfg(feature = "rt-tokio")]
#[cfg_attr(docsrs, doc(cfg(feature = "rt-tokio")))]
pub async fn from_file(file: tokio::fs::File) -> Result<Self, Error> {
FsBuilder::new().file(file).build().await
}
#[cfg(feature = "rt-tokio")]
/// Convert this `ByteStream` into a struct that implements [`AsyncRead`](tokio::io::AsyncRead).
///
/// # Example
///
/// ```rust
/// use tokio::io::{BufReader, AsyncBufReadExt};
/// use aws_smithy_http::byte_stream::ByteStream;
///
/// # async fn dox(my_bytestream: ByteStream) -> std::io::Result<()> {
/// let mut lines = BufReader::new(my_bytestream.into_async_read()).lines();
/// while let Some(line) = lines.next_line().await? {
/// // Do something line by line
/// }
/// # Ok(())
/// # }
/// ```
pub fn into_async_read(self) -> impl tokio::io::AsyncRead {
tokio_util::io::StreamReader::new(self)
}
/// Given a function to modify an [`SdkBody`], run it on the `SdkBody` inside this `Bytestream`.
/// returning a new `Bytestream`.
pub fn map(self, f: impl Fn(SdkBody) -> SdkBody + Send + Sync + 'static) -> ByteStream {
ByteStream::new(self.into_inner().map(f))
}
}
impl Default for ByteStream {
fn default() -> Self {
Self {
inner: Inner {
body: SdkBody::from(""),
},
}
}
}
impl From<SdkBody> for ByteStream {
fn from(inp: SdkBody) -> Self {
ByteStream::new(inp)
}
}
/// Construct a retryable ByteStream from [`bytes::Bytes`](bytes::Bytes)
impl From<Bytes> for ByteStream {
fn from(input: Bytes) -> Self {
ByteStream::new(SdkBody::from(input))
}
}
/// Construct a retryable ByteStream from a `Vec<u8>`.
///
/// This will convert the `Vec<u8>` into [`bytes::Bytes`](bytes::Bytes) to enable efficient
/// retries.
impl From<Vec<u8>> for ByteStream {
fn from(input: Vec<u8>) -> Self {
Self::from(Bytes::from(input))
}
}
impl From<hyper::Body> for ByteStream {
fn from(input: hyper::Body) -> Self {
ByteStream::new(SdkBody::from(input))
}
}
impl futures_core::stream::Stream for ByteStream {
type Item = Result<Bytes, Error>;
fn poll_next(self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<Option<Self::Item>> {
self.project().inner.poll_next(cx).map_err(Error::streaming)
}
fn size_hint(&self) -> (usize, Option<usize>) {
self.inner.size_hint()
}
}
/// Non-contiguous Binary Data Storage
///
/// When data is read from the network, it is read in a sequence of chunks that are not in
/// contiguous memory. [`AggregatedBytes`](crate::byte_stream::AggregatedBytes) provides a view of
/// this data via [`impl Buf`](bytes::Buf) or it can be copied into contiguous storage with
/// [`.into_bytes()`](crate::byte_stream::AggregatedBytes::into_bytes).
#[derive(Debug, Clone)]
pub struct AggregatedBytes(SegmentedBuf<Bytes>);
impl AggregatedBytes {
/// Convert this buffer into [`Bytes`](bytes::Bytes)
///
/// # Why does this consume `self`?
/// Technically, [`copy_to_bytes`](bytes::Buf::copy_to_bytes) can be called without ownership of self. However, since this
/// mutates the underlying buffer such that no data is remaining, it is more misuse resistant to
/// prevent the caller from attempting to reread the buffer.
///
/// If the caller only holds a mutable reference, they may use [`copy_to_bytes`](bytes::Buf::copy_to_bytes)
/// directly on `AggregatedBytes`.
pub fn into_bytes(mut self) -> Bytes {
self.0.copy_to_bytes(self.0.remaining())
}
/// Convert this buffer into an [`Iterator`] of underlying non-contiguous segments of [`Bytes`]
pub fn into_segments(self) -> impl Iterator<Item = Bytes> {
self.0.into_inner().into_iter()
}
/// Convert this buffer into a `Vec<u8>`
pub fn to_vec(self) -> Vec<u8> {
self.0
.into_inner()
.into_iter()
.flat_map(|b| b.to_vec())
.collect()
}
}
impl Buf for AggregatedBytes {
// Forward all methods that SegmentedBuf has custom implementations of.
fn remaining(&self) -> usize {
self.0.remaining()
}
fn chunk(&self) -> &[u8] {
self.0.chunk()
}
fn chunks_vectored<'a>(&'a self, dst: &mut [IoSlice<'a>]) -> usize {
self.0.chunks_vectored(dst)
}
fn advance(&mut self, cnt: usize) {
self.0.advance(cnt)
}
fn copy_to_bytes(&mut self, len: usize) -> Bytes {
self.0.copy_to_bytes(len)
}
}
pin_project! {
#[derive(Debug, Clone, PartialEq, Eq)]
struct Inner<B> {
#[pin]
body: B,
}
}
impl<B> Inner<B> {
fn new(body: B) -> Self {
Self { body }
}
async fn collect(self) -> Result<AggregatedBytes, B::Error>
where
B: http_body::Body<Data = Bytes>,
{
let mut output = SegmentedBuf::new();
let body = self.body;
pin_utils::pin_mut!(body);
while let Some(buf) = body.data().await {
output.push(buf?);
}
Ok(AggregatedBytes(output))
}
}
const SIZE_HINT_32_BIT_PANIC_MESSAGE: &str = r#"
You're running a 32-bit system and this stream's length is too large to be represented with a usize.
Please limit stream length to less than 4.294Gb or run this program on a 64-bit computer architecture.
"#;
impl<B> futures_core::stream::Stream for Inner<B>
where
B: http_body::Body<Data = Bytes>,
{
type Item = Result<Bytes, B::Error>;
fn poll_next(self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<Option<Self::Item>> {
self.project().body.poll_data(cx)
}
fn size_hint(&self) -> (usize, Option<usize>) {
let size_hint = http_body::Body::size_hint(&self.body);
let lower = size_hint.lower().try_into();
let upper = size_hint.upper().map(|u| u.try_into()).transpose();
match (lower, upper) {
(Ok(lower), Ok(upper)) => (lower, upper),
(Err(_), _) | (_, Err(_)) => {
panic!("{}", SIZE_HINT_32_BIT_PANIC_MESSAGE)
}
}
}
}
#[cfg(test)]
mod tests {
use crate::byte_stream::Inner;
use bytes::Bytes;
#[tokio::test]
async fn read_from_string_body() {
let body = hyper::Body::from("a simple body");
assert_eq!(
Inner::new(body)
.collect()
.await
.expect("no errors")
.into_bytes(),
Bytes::from("a simple body")
);
}
#[tokio::test]
async fn read_from_channel_body() {
let (mut sender, body) = hyper::Body::channel();
let byte_stream = Inner::new(body);
tokio::spawn(async move {
sender.send_data(Bytes::from("data 1")).await.unwrap();
sender.send_data(Bytes::from("data 2")).await.unwrap();
sender.send_data(Bytes::from("data 3")).await.unwrap();
});
assert_eq!(
byte_stream.collect().await.expect("no errors").into_bytes(),
Bytes::from("data 1data 2data 3")
);
}
#[cfg(feature = "rt-tokio")]
#[tokio::test]
async fn path_based_bytestreams() -> Result<(), Box<dyn std::error::Error>> {
use super::ByteStream;
use bytes::Buf;
use http_body::Body;
use std::io::Write;
use tempfile::NamedTempFile;
let mut file = NamedTempFile::new()?;
for i in 0..10000 {
writeln!(file, "Brian was here. Briefly. {}", i)?;
}
let body = ByteStream::from_path(&file).await?.into_inner();
// assert that a valid size hint is immediately ready
assert_eq!(body.size_hint().exact(), Some(298890));
let mut body1 = body.try_clone().expect("retryable bodies are cloneable");
// read a little bit from one of the clones
let some_data = body1
.data()
.await
.expect("should have some data")
.expect("read should not fail");
assert!(!some_data.is_empty());
// make some more clones
let body2 = body.try_clone().expect("retryable bodies are cloneable");
let body3 = body.try_clone().expect("retryable bodies are cloneable");
let body2 = ByteStream::new(body2).collect().await?.into_bytes();
let body3 = ByteStream::new(body3).collect().await?.into_bytes();
assert_eq!(body2, body3);
assert!(body2.starts_with(b"Brian was here."));
assert!(body2.ends_with(b"9999\n"));
assert_eq!(body2.len(), 298890);
assert_eq!(
ByteStream::new(body1).collect().await?.remaining(),
298890 - some_data.len()
);
Ok(())
}
#[cfg(feature = "rt-tokio")]
#[tokio::test]
async fn bytestream_into_async_read() {
use super::ByteStream;
use tokio::io::AsyncBufReadExt;
let byte_stream = ByteStream::from_static(b"data 1\ndata 2\ndata 3");
let async_buf_read = tokio::io::BufReader::new(byte_stream.into_async_read());
let mut lines = async_buf_read.lines();
assert_eq!(lines.next_line().await.unwrap(), Some("data 1".to_owned()));
assert_eq!(lines.next_line().await.unwrap(), Some("data 2".to_owned()));
assert_eq!(lines.next_line().await.unwrap(), Some("data 3".to_owned()));
assert_eq!(lines.next_line().await.unwrap(), None);
}
}