Pratik Mankawde 371f10934e fix(telemetry): correct five signals that would have misled an operator
Found by reviewing what each metric actually measures, with attention to the
derived and bucketed ones. All five could report healthy while the node was
not, or the reverse.

- The nodestore latency panel took rate() of a mean. The gauge already
  divides duration by count in code, so rating it produced a figure with no
  unit, and Prometheus discards a gauge's decreases, so a heavy back-fill
  read as roughly zero microseconds per operation. The cumulative duration
  totals are now exported alongside the means, and the panel divides the
  rate of the total by the rate of the count, which is the latency over the
  panel's own window rather than a since-boot average that flattens with
  uptime.
- The DNS-resolve and outbound-dial histograms had no explicit buckets, so
  they inherited a ladder that stops at ten seconds while the dial timer is
  fifteen. Every timed-out dial fell in the overflow bucket and p95 read
  exactly ten seconds however bad it got. Both now have a ladder reaching
  thirty seconds with fifteen on its own boundary, so a timeout is
  distinguishable from merely slow.
- The missing-node counts only cleared when a tree completed, so a
  timed-out or failed acquire left its last count latched. Since the gauge
  reports the maximum across everything still in the collection, and
  eviction waits on a grace period plus the sweep interval, a finished node
  reported as stuck for minutes. That inverts the one signal that separates
  stuck from slow. Cleared unconditionally on the terminal path instead.
- A disabled quorum published a sentinel so large that, on a timeseries
  axis shared with the trusted-key count, it flattened the key line to the
  baseline and hid the outage it was meant to mark. The series is now
  omitted and a quorum_disabled flag carries the state.
- Two panel descriptions claimed a one-second export cycle. The reader is
  configured for ten.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
2026-07-27 14:27:28 +01:00
2026-07-06 17:25:06 +01:00
2026-07-16 15:28:04 +00:00

codecov

The XRP Ledger

The XRP Ledger is a decentralized cryptographic ledger powered by a network of peer-to-peer nodes. The XRP Ledger uses a novel Byzantine Fault Tolerant consensus algorithm to settle and record transactions in a secure distributed database without a central operator.

XRP

XRP is a public, counterparty-free crypto-asset native to the XRP Ledger, and is designed as a gas token for network services and to bridge different currencies. XRP is traded on the open-market and is available for anyone to access. The XRP Ledger was created in 2012 with a finite supply of 100 billion units of XRP.

xrpld

The server software that powers the XRP Ledger is called xrpld and is available in this repository under the permissive ISC open-source license. The xrpld server software is written primarily in C++ and runs on a variety of platforms. The xrpld server software can run in several modes depending on its configuration.

If you are interested in running an API Server (including a Full History Server), take a look at Clio. (xrpld Reporting Mode has been replaced by Clio.)

Build from Source

Key Features of the XRP Ledger

  • Censorship-Resistant Transaction Processing: No single party decides which transactions succeed or fail, and no one can "roll back" a transaction after it completes. As long as those who choose to participate in the network keep it healthy, they can settle transactions in seconds.
  • Fast, Efficient Consensus Algorithm: The XRP Ledger's consensus algorithm settles transactions in 4 to 5 seconds, processing at a throughput of up to 1500 transactions per second. These properties put XRP at least an order of magnitude ahead of other top digital assets.
  • Finite XRP Supply: When the XRP Ledger began, 100 billion XRP were created, and no more XRP will ever be created. The available supply of XRP decreases slowly over time as small amounts are destroyed to pay transaction fees.
  • Responsible Software Governance: A team of full-time developers at Ripple & other organizations maintain and continually improve the XRP Ledger's underlying software with contributions from the open-source community. Ripple acts as a steward for the technology and an advocate for its interests.
  • Secure, Adaptable Cryptography: The XRP Ledger relies on industry standard digital signature systems like ECDSA (the same scheme used by Bitcoin) but also supports modern, efficient algorithms like Ed25519. The extensible nature of the XRP Ledger's software makes it possible to add and disable algorithms as the state of the art in cryptography advances.
  • Modern Features: Features like Escrow, Checks, and Payment Channels support financial applications atop of the XRP Ledger. This toolbox of advanced features comes with safety features like a process for amending the network and separate checks against invariant constraints.
  • On-Ledger Decentralized Exchange: In addition to all the features that make XRP useful on its own, the XRP Ledger also has a fully-functional accounting system for tracking and trading obligations denominated in any way users want, and an exchange built into the protocol. The XRP Ledger can settle long, cross-currency payment paths and exchanges of multiple currencies in atomic transactions, bridging gaps of trust with XRP.

Source Code

Here are some good places to start learning the source code:

  • Read the markdown files in the source tree: src/xrpld/**/*.md.
  • Read the levelization document to get an idea of the internal dependency graph.
  • In the big picture, the main function constructs an ApplicationImp object, which implements the Application virtual interface. Almost every component in the application takes an Application& parameter in its constructor, typically named app and stored as a member variable app_. This allows most components to depend on any other component.

Repository Contents

Folder Contents
./bin Scripts and data files for XRPL developers.
./Builds Platform-specific guides for building xrpld.
./docs Source documentation files and doxygen config.
./cfg Example configuration files.
./src Source code.

Some of the directories under src are external repositories included using git-subtree. See those directories' README files for more details.

Additional Documentation

See Also

Description
Decentralized cryptocurrency blockchain daemon implementing the XRP Ledger protocol in C++
Readme 340 MiB
Languages
C++ 98.6%
CMake 0.5%
Python 0.4%
Shell 0.2%
Mako 0.1%
Other 0.1%