Libraries tagged by data stack

invezgo/sdk

0 Favers
1 Downloads

Official PHP SDK for Invezgo API - Data Saham Indonesia

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finlight/client

0 Favers
0 Downloads

PHP client for the finlight.me financial news API - search sentiment-scored, entity-tagged market news and verify finlight webhooks.

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elminson/yahoo-finance-api

0 Favers
48 Downloads

PHP library for accessing Yahoo Finance data

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apiverve/globalstockmarket

0 Favers
0 Downloads

Global Stock Market is a tool for comparing stock market performance across 36 countries. It returns a normalized share price index (2015=100) from OECD data, allowing you to compare market growth between countries over time.

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nhalstead/webhook-coordinator

2 Favers
11 Downloads

Trigger Webhooks to post data to channels in php. This will work with Slack, Discord, and other systems that use WebHooks.

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stickee/import

1 Favers
205 Downloads

Stickee data importer module - import from CSV, Akeneo, etc

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stock2shop2/magento2_module_webhook

1 Favers
2 Downloads

The module sends new order's data to a specified URL in a JSON format.

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stick/housekeeper

0 Favers
6 Downloads

Smart and simple way of organizing data.

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gieroj/barchart-api

0 Favers
0 Downloads

Api integration with barchart stock market data.

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robote13/yii2-cbr-webservices

0 Favers
805 Downloads

Getting daily data on exchange rates, stock indexes e t.c. via CBR web services.

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khauto/laravel-ui-helper

0 Favers
0 Downloads

Laravel JS helper package for table grouping, sticky headers, and date formatting.

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axo3/api-client

0 Favers
3 Downloads

PHP client for the axo3 real-estate data API: fetch your stock as JSON, keep it as a local file snapshot, revalidate at the interval the API dictates. Framework-free.

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sugarcraft/sugar-prompt

1 Favers
576 Downloads

PHP port of charmbracelet/huh — interactive form library (Note, Input, Confirm, Select, MultiSelect, Text, FilePicker, Date, Slider, Color) with multi-page Group support, 7 stock themes, and form-level KeyMap override per binding.

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tecnickcom/tc-lib-barcode

305 Favers
9223398 Downloads

PHP library to generate 73 types of linear, 2D and postal barcodes as SVG, PNG, HTML or GD images

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inda-hr/php_sdk

6 Favers
1428 Downloads

# Introduction **INDA (INtelligent Data Analysis)** is an [Intervieweb](https://www.intervieweb.it/hrm/) AI solution provided as a RESTful API. The INDA pricing model is *credits-based*, which means that a certain number of credits is associated to each API request. Hence, users have to purchase a certain amount of credits (established according to their needs) which will be reduced at each API call. INDA accepts and processes a user's request only if their credits quota is grater than - or, at least, equal to - the number of credits required by that request. To obtain further details on the pricing, please visit our [site](https://inda.ai) or contact us. INDA HR embraces a wide range of functionalities to manage the main elements of a recruitment process: + [**candidate**](https://api.inda.ai/hr/docs/v2/#tag/Resume-Management) (hereafter also referred to as **resume** or **applicant**), or rather a person looking for a job; + [**job advertisement**](https://api.inda.ai/hr/docs/v2/#tag/JobAd-Management) (hereafter also referred to as **job ad**), which is a document that collects all the main information and details about a job vacancy; + [**application**](https://api.inda.ai/hr/docs/v2/#tag/Application-Management), that binds candidates to job ads; it is generated whenever a candidate applies for a job. Each of them has a specific set of methods that grants users the ability to create, read, update and delete the relative documents, plus some special features based on AI approaches (such as *document parsing* or *semantic search*). They can be explored in their respective sections. Data about the listed document types can be enriched by connecting them to other INDA supported entities, such as [**companies**](https://api.inda.ai/hr/docs/v2/#tag/Company-Management) and [**universities**](https://api.inda.ai/hr/docs/v2/#tag/Universities), so that recruiters may get a better and more detailed idea on the candidates' experiences and acquired skills. All the functionalities mentioned above are meant to help recruiters during the talent acquisition process, by exploiting the power of AI systems. Among the advantages a recruiter has by using this kind of systems, tackling the bias problem is surely one of the most relevant. Bias in recruitment is a serious issue that affect both recruiters and candidates, since it may cause wrong hiring decisions. As we care a lot about this problem, we are constantly working on reduce the bias in original data so that INDA results may be as fair as possible. As of now, in order to tackle the bias issue, INDA automatically ignores specific fields (such as name, gender, age and nationality) during the initial processing of each candidate data. Furthermore, we decided to let users collect data of various types, including personal or sensitive details, but we do not allow their usage if it is different from statistical purposes; our aim is to discourage recruiters from focusing on candidates' personal information, and to put their attention on the candidate's skills and abilities. We want to help recruiters to prevent any kind of bias while searching for the most valuable candidates they really need. The following documentation is addressed both to developers, in order to provide all technical details for INDA integration, and to managers, to guide them in the exploration of the implementation possibilities. The host of the API is [https://api.inda.ai/hr/v2/](https://api.inda.ai/hr/v2/). We recommend to check the API version and build (displayed near the documentation title). You can contact us at [email protected] in case of problems, suggestions, or particular needs. The search panel on the left can be used to navigate through the documentation and provides an overview of the API structure. On the right, you can find (*i*) the url of the method, (*ii*) an example of request body (if present), and (*iii*) an example of response for each response code. Finally, in the central section of each API method, you can find (*i*) a general description of the purpose of the method, (*ii*) details on parameters and request body schema (if present), and (*iii*) details on response schema, error models, and error codes.

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