component.rs 15.4 KB
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// SPDX-FileCopyrightText: Copyright (c) 2024-2025 NVIDIA CORPORATION & AFFILIATES. All rights reserved.
// SPDX-License-Identifier: Apache-2.0
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//! The [Component] module defines the top-level API for building distributed applications.
//!
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//! A distributed application consists of a set of [Component] that can host one
//! or more [Endpoint]. Each [Endpoint] is a network-accessible service
//! that can be accessed by other [Component] in the distributed application.
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//!
//! A [Component] is made discoverable by registering it with the distributed runtime under
//! a [`Namespace`].
//!
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//! A [`Namespace`] is a logical grouping of [Component] that are grouped together.
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//!
//! We might extend namespace to include grouping behavior, which would define groups of
//! components that are tightly coupled.
//!
//! A [Component] is the core building block of a distributed application. It is a logical
//! unit of work such as a `Preprocessor` or `SmartRouter` that has a well-defined role in the
//! distributed application.
//!
//! A [Component] can present to the distributed application one or more configuration files
//! which define how that component was constructed/configured and what capabilities it can
//! provide.
//!
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//! Other [Component] can write to watching locations within a [Component] etcd
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//! path. This allows the [Component] to take dynamic actions depending on the watch
//! triggers.
//!
//! TODO: Top-level Overview of Endpoints/Functions

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use crate::{discovery::Lease, service::ServiceSet};
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use super::{
    error, traits::*, transports::nats::Slug, utils::Duration, DistributedRuntime, Result, Runtime,
};
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use crate::pipeline::network::{ingress::push_endpoint::PushEndpoint, PushWorkHandler};
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use crate::protocols::Endpoint as EndpointId;
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use async_nats::{
    rustls::quic,
    service::{Service, ServiceExt},
};
use derive_builder::Builder;
use derive_getters::Getters;
use educe::Educe;
use serde::{Deserialize, Serialize};
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use service::EndpointStatsHandler;
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use std::{collections::HashMap, hash::Hash, sync::Arc};
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use validator::{Validate, ValidationError};

mod client;
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#[allow(clippy::module_inception)]
mod component;
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mod endpoint;
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mod namespace;
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mod registry;
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pub mod service;
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pub use client::{Client, InstanceSource};

/// The root etcd path where each instance registers itself in etcd.
/// An instance is namespace+component+endpoint+lease_id and must be unique.
pub const INSTANCE_ROOT_PATH: &str = "instances";

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#[derive(Debug, Clone, Serialize, Deserialize, Eq, PartialEq)]
#[serde(rename_all = "snake_case")]
pub enum TransportType {
    NatsTcp(String),
}

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#[derive(Default)]
pub struct RegistryInner {
    services: HashMap<String, Service>,
    stats_handlers: HashMap<String, Arc<std::sync::Mutex<HashMap<String, EndpointStatsHandler>>>>,
}

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#[derive(Clone)]
pub struct Registry {
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    inner: Arc<tokio::sync::Mutex<RegistryInner>>,
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}

#[derive(Debug, Clone, Serialize, Deserialize)]
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pub struct Instance {
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    pub component: String,
    pub endpoint: String,
    pub namespace: String,
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    pub instance_id: i64,
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    pub transport: TransportType,
}

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impl Instance {
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    pub fn id(&self) -> i64 {
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        self.instance_id
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    }
}

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/// A [Component] a discoverable entity in the distributed runtime.
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/// You can host [Endpoint] on a [Component] by first creating
/// a [Service] then adding one or more [Endpoint] to the [Service].
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///
/// You can also issue a request to a [Component]'s [Endpoint] by creating a [Client].
#[derive(Educe, Builder, Clone)]
#[educe(Debug)]
#[builder(pattern = "owned")]
pub struct Component {
    #[builder(private)]
    #[educe(Debug(ignore))]
    drt: DistributedRuntime,

    // todo - restrict the namespace to a-z0-9-_A-Z
    /// Name of the component
    #[builder(setter(into))]
    name: String,

    // todo - restrict the namespace to a-z0-9-_A-Z
    /// Namespace
    #[builder(setter(into))]
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    namespace: Namespace,
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    // A static component's endpoints cannot be discovered via etcd, they are
    // fixed at startup time.
    is_static: bool,
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}

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impl Hash for Component {
    fn hash<H: std::hash::Hasher>(&self, state: &mut H) {
        self.namespace.name().hash(state);
        self.name.hash(state);
        self.is_static.hash(state);
    }
}

impl PartialEq for Component {
    fn eq(&self, other: &Self) -> bool {
        self.namespace.name() == other.namespace.name()
            && self.name == other.name
            && self.is_static == other.is_static
    }
}

impl Eq for Component {}

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impl std::fmt::Display for Component {
    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
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        write!(f, "{}.{}", self.namespace.name(), self.name)
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    }
}

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impl DistributedRuntimeProvider for Component {
    fn drt(&self) -> &DistributedRuntime {
        &self.drt
    }
}

impl RuntimeProvider for Component {
    fn rt(&self) -> &Runtime {
        self.drt.rt()
    }
}

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impl Component {
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    /// The component part of an instance path in etcd.
    pub fn etcd_root(&self) -> String {
        let ns = self.namespace.name();
        let cp = &self.name;
        format!("{INSTANCE_ROOT_PATH}/{ns}/{cp}")
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    }

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    pub fn service_name(&self) -> String {
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        let service_name = format!("{}_{}", self.namespace.name(), self.name);
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        Slug::slugify(&service_name).to_string()
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    }

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    pub fn path(&self) -> String {
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        format!("{}/{}", self.namespace.name(), self.name)
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    }

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    pub fn namespace(&self) -> &Namespace {
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        &self.namespace
    }

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    pub fn name(&self) -> String {
        self.name.clone()
    }

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    pub fn endpoint(&self, endpoint: impl Into<String>) -> Endpoint {
        Endpoint {
            component: self.clone(),
            name: endpoint.into(),
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            is_static: self.is_static,
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        }
    }

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    pub async fn list_instances(&self) -> anyhow::Result<Vec<Instance>> {
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        let Some(etcd_client) = self.drt.etcd_client() else {
            return Ok(vec![]);
        };
        let mut out = vec![];
        // The extra slash is important to only list exact component matches, not substrings.
        for kv in etcd_client
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            .kv_get_prefix(format!("{}/", self.etcd_root()))
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            .await?
        {
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            let val = match serde_json::from_slice::<Instance>(kv.value()) {
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                Ok(val) => val,
                Err(err) => {
                    anyhow::bail!(
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                        "Error converting etcd response to Instance: {err}. {}",
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                        kv.value_str()?
                    );
                }
            };
            out.push(val);
        }
        Ok(out)
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    }

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    pub async fn scrape_stats(&self, timeout: Duration) -> Result<ServiceSet> {
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        let service_name = self.service_name();
        let service_client = self.drt().service_client();
        service_client
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            .collect_services(&service_name, timeout)
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            .await
    }

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    /// TODO
    ///
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    /// This method will scrape the stats for all available services
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    /// Returns a stream of `ServiceInfo` objects.
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    /// This should be consumed by a `[tokio::time::timeout_at`] because each services
    /// will only respond once, but there is no way to know when all services have responded.
    pub async fn stats_stream(&self) -> Result<()> {
        unimplemented!("collect_stats")
    }

    pub fn service_builder(&self) -> service::ServiceConfigBuilder {
        service::ServiceConfigBuilder::from_component(self.clone())
    }
}

impl ComponentBuilder {
    pub fn from_runtime(drt: DistributedRuntime) -> Self {
        Self::default().drt(drt)
    }
}

#[derive(Debug, Clone)]
pub struct Endpoint {
    component: Component,

    // todo - restrict alphabet
    /// Endpoint name
    name: String,
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    is_static: bool,
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}

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impl Hash for Endpoint {
    fn hash<H: std::hash::Hasher>(&self, state: &mut H) {
        self.component.hash(state);
        self.name.hash(state);
        self.is_static.hash(state);
    }
}

impl PartialEq for Endpoint {
    fn eq(&self, other: &Self) -> bool {
        self.component == other.component
            && self.name == other.name
            && self.is_static == other.is_static
    }
}

impl Eq for Endpoint {}

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impl DistributedRuntimeProvider for Endpoint {
    fn drt(&self) -> &DistributedRuntime {
        self.component.drt()
    }
}

impl RuntimeProvider for Endpoint {
    fn rt(&self) -> &Runtime {
        self.component.rt()
    }
}

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impl Endpoint {
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    pub fn id(&self) -> EndpointId {
        EndpointId {
            namespace: self.component.namespace().name().to_string(),
            component: self.component.name().to_string(),
            name: self.name().to_string(),
        }
    }

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    pub fn name(&self) -> &str {
        &self.name
    }

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    pub fn component(&self) -> &Component {
        &self.component
    }

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    pub fn path(&self) -> String {
        format!("{}/{}", self.component.path(), self.name)
    }

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    /// The endpoint part of an instance path in etcd
    pub fn etcd_root(&self) -> String {
        let component_path = self.component.etcd_root();
        let endpoint_name = &self.name;
        format!("{component_path}/{endpoint_name}")
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    }

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    /// The fully path of an instance in etcd
    pub fn etcd_path(&self, lease_id: i64) -> String {
        let endpoint_root = self.etcd_root();
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        if self.is_static {
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            endpoint_root
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        } else {
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            format!("{endpoint_root}:{lease_id:x}")
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        }
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    }

    pub fn name_with_id(&self, lease_id: i64) -> String {
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        if self.is_static {
            self.name.clone()
        } else {
            format!("{}-{:x}", self.name, lease_id)
        }
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    }

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    pub fn subject(&self) -> String {
        format!("{}.{}", self.component.service_name(), self.name)
    }

    /// Subject to an instance of the [Endpoint] with a specific lease id
    pub fn subject_to(&self, lease_id: i64) -> String {
        format!(
            "{}.{}",
            self.component.service_name(),
            self.name_with_id(lease_id)
        )
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    }

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    pub async fn client(&self) -> Result<client::Client> {
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        if self.is_static {
            client::Client::new_static(self.clone()).await
        } else {
            client::Client::new_dynamic(self.clone()).await
        }
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    }

    pub fn endpoint_builder(&self) -> endpoint::EndpointConfigBuilder {
        endpoint::EndpointConfigBuilder::from_endpoint(self.clone())
    }
}

#[derive(Educe, Builder, Clone, Validate)]
#[educe(Debug)]
#[builder(pattern = "owned")]
pub struct Namespace {
    #[builder(private)]
    #[educe(Debug(ignore))]
    runtime: DistributedRuntime,

    #[validate()]
    name: String,
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    is_static: bool,
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}

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impl DistributedRuntimeProvider for Namespace {
    fn drt(&self) -> &DistributedRuntime {
        &self.runtime
    }
}

impl RuntimeProvider for Namespace {
    fn rt(&self) -> &Runtime {
        self.runtime.rt()
    }
}

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impl std::fmt::Display for Namespace {
    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
        write!(f, "{}", self.name)
    }
}

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impl Namespace {
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    pub(crate) fn new(runtime: DistributedRuntime, name: String, is_static: bool) -> Result<Self> {
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        Ok(NamespaceBuilder::default()
            .runtime(runtime)
            .name(name)
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            .is_static(is_static)
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            .build()?)
    }

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    /// Create a [`Component`] in the namespace who's endpoints can be discovered with etcd
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    pub fn component(&self, name: impl Into<String>) -> Result<Component> {
        Ok(ComponentBuilder::from_runtime(self.runtime.clone())
            .name(name)
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            .namespace(self.clone())
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            .is_static(self.is_static)
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            .build()?)
    }
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    pub fn name(&self) -> &str {
        &self.name
    }
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}

// Custom validator function
fn validate_allowed_chars(input: &str) -> Result<(), ValidationError> {
    // Define the allowed character set using a regex
    let regex = regex::Regex::new(r"^[a-z0-9-_]+$").unwrap();

    if regex.is_match(input) {
        Ok(())
    } else {
        Err(ValidationError::new("invalid_characters"))
    }
}

// TODO - enable restrictions to the character sets allowed for namespaces,
// components, and endpoints.
//
// Put Validate traits on the struct and use the `validate_allowed_chars` method
// to validate the fields.

// #[cfg(test)]
// mod tests {
//     use super::*;
//     use validator::Validate;

//     #[test]
//     fn test_valid_names() {
//         // Valid strings
//         let valid_inputs = vec![
//             "abc",        // Lowercase letters
//             "abc123",     // Letters and numbers
//             "a-b-c",      // Letters with hyphens
//             "a_b_c",      // Letters with underscores
//             "a-b_c-123",  // Mixed valid characters
//             "a",          // Single character
//             "a_b",        // Short valid pattern
//             "123456",     // Only numbers
//             "a---b_c123", // Repeated hyphens/underscores
//         ];

//         for input in valid_inputs {
//             let result = validate_allowed_chars(input);
//             assert!(result.is_ok(), "Expected '{}' to be valid", input);
//         }
//     }

//     #[test]
//     fn test_invalid_names() {
//         // Invalid strings
//         let invalid_inputs = vec![
//             "abc!",     // Invalid character `!`
//             "abc@",     // Invalid character `@`
//             "123$",     // Invalid character `$`
//             "foo.bar",  // Invalid character `.`
//             "foo/bar",  // Invalid character `/`
//             "foo\\bar", // Invalid character `\`
//             "abc#",     // Invalid character `#`
//             "abc def",  // Spaces are not allowed
//             "foo,",     // Invalid character `,`
//             "",         // Empty string
//         ];

//         for input in invalid_inputs {
//             let result = validate_allowed_chars(input);
//             assert!(result.is_err(), "Expected '{}' to be invalid", input);
//         }
//     }

//     // #[test]
//     // fn test_struct_validation_valid() {
//     //     // Struct with valid data
//     //     let valid_data = InputData {
//     //         name: "valid-name_123".to_string(),
//     //     };
//     //     assert!(valid_data.validate().is_ok());
//     // }

//     // #[test]
//     // fn test_struct_validation_invalid() {
//     //     // Struct with invalid data
//     //     let invalid_data = InputData {
//     //         name: "invalid!name".to_string(),
//     //     };
//     //     let result = invalid_data.validate();
//     //     assert!(result.is_err());

//     //     if let Err(errors) = result {
//     //         let error_map = errors.field_errors();
//     //         assert!(error_map.contains_key("name"));
//     //         let name_errors = &error_map["name"];
//     //         assert_eq!(name_errors[0].code, "invalid_characters");
//     //     }
//     // }

//     #[test]
//     fn test_edge_cases() {
//         // Edge cases
//         let edge_inputs = vec![
//             ("-", true),   // Single hyphen
//             ("_", true),   // Single underscore
//             ("a-", true),  // Letter with hyphen
//             ("-", false),  // Repeated hyphens
//             ("-a", false), // Hyphen at the beginning
//             ("a-", false), // Hyphen at the end
//         ];

//         for (input, expected_validity) in edge_inputs {
//             let result = validate_allowed_chars(input);
//             if expected_validity {
//                 assert!(result.is_ok(), "Expected '{}' to be valid", input);
//             } else {
//                 assert!(result.is_err(), "Expected '{}' to be invalid", input);
//             }
//         }
//     }
// }