Keine Beschreibung

Nicolas "Pixel" Noble c8fd2d1c01 Properly selecting chunks of code for the wakeup fd codepath. vor 11 Jahren
examples 6de65b01cb delete default service account email vor 11 Jahren
include c8fd2d1c01 Properly selecting chunks of code for the wakeup fd codepath. vor 11 Jahren
src c8fd2d1c01 Properly selecting chunks of code for the wakeup fd codepath. vor 11 Jahren
templates 213ed91850 Re-enabling errors on warning, disabling unused parameter warning, and fixing all subsequent errors. vor 11 Jahren
test 2b16bc4656 Fixing echo test. vor 11 Jahren
third_party fee065c1c7 Merge branch 'master' of github.com:google/grpc into json vor 11 Jahren
tools d87c9ea3c9 Merge pull request #287 from tbetbetbe/grpc_ruby_unittest_cleanup vor 11 Jahren
vsprojects b24b50094c Merge pull request #233 from nicolasnoble/propsheets vor 11 Jahren
.clang-format a1cb002473 Make clang-format somewhat compatible across versions vor 11 Jahren
.gitignore 8382a61230 Ignore vim swap files vor 11 Jahren
.gitmodules 7ce706b722 Removing libevent from third_party, as it's no longer necessary. vor 11 Jahren
INSTALL 3b06068cb5 Fixed protobuf build instructions vor 11 Jahren
LICENSE b7ebd3b8c6 Initial import. vor 11 Jahren
Makefile 213ed91850 Re-enabling errors on warning, disabling unused parameter warning, and fixing all subsequent errors. vor 11 Jahren
README.md 7453c3da4c Update README.md vor 11 Jahren
build.json 3c63c0ced3 Adding a few more tests. vor 11 Jahren

README.md

gRPC - An RPC library and framework

Copyright 2015 Google Inc.

#Installation

See grpc/INSTALL for installation instructions for various platforms.

#Overview

Remote Procedure Calls (RPCs) provide a useful abstraction for building distributed applications and services. The libraries in this repository provide a concrete implementation of the gRPC protocol, layered over HTTP/2. These libraries enable communication between clients and servers using any combination of the supported languages.

##Interface

Developers using gRPC typically start with the description of an RPC service (a collection of methods), and generate client and server side interfaces which they use on the client-side and implement on the server side.

By default, gRPC uses Protocol Buffers as the Interface Definition Language (IDL) for describing both the service interface and the structure of the payload messages. It is possible to use other alternatives if desired.

###Surface API Starting from an interface definition in a .proto file, gRPC provides Protocol Compiler plugins that generate Client- and Server-side APIs. gRPC users typically call into these APIs on the Client side and implement the corresponding API on the server side.

Synchronous vs. asynchronous

Synchronous RPC calls, that block until a response arrives from the server, are the closest approximation to the abstraction of a procedure call that RPC aspires to.

On the other hand, networks are inherently asynchronous and in many scenarios,
it is desirable to have the ability to start RPCs without blocking the current thread.

The gRPC programming surface in most languages comes in both synchronous and asynchronous flavors.

Streaming

gRPC supports streaming semantics, where either the client or the server (or both) send a stream of messages on a single RPC call. The most general case is Bidirectional Streaming where a single gRPC call establishes a stream where both the client and the server can send a stream of messages to each other. The streamed messages are delivered in the order they were sent.

#Protocol

The gRPC protocol specifies the abstract requirements for communication between clients and servers. A concrete embedding over HTTP/2 completes the picture by fleshing out the details of each of the required operations.

Abstract gRPC protocol

A gRPC RPC comprises of a bidirectional stream of messages, initiated by the client. In the client-to-server direction, this stream begins with a mandatory Call Header, followed by optional Initial-Metadata, followed by zero or more Payload Messages. The server-to-client direction contains an optional Initial-Metadata, followed by zero or more Payload Messages terminated with a mandatory Status and optional Status-Metadata (a.k.a.,Trailing-Metadata).

Implementation over HTTP/2

The abstract protocol defined above is implemented over HTTP/2. gRPC bidirectional streams are mapped to HTTP/2 streams. The contents of Call Header and Initial Metadata are sent as HTTP/2 headers and subject to HPAC compression. Payload Messages are serialized into a byte stream of length prefixed gRPC frames which are then fragmented into HTTP/2 frames at the sender and reassembled at the receiver. Status and Trailing-Metadata are sent as HTTP/2 trailing headers (a.k.a., trailers).

Flow Control

gRPC inherits the flow control mchanims in HTTP/2 and uses them to enable fine-grained control of the amount of memory used for buffering in-flight messages.