Software Alternatives, Accelerators & Startups

Veracode VS Pandas

Compare Veracode VS Pandas and see what are their differences

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Veracode logo Veracode

Veracode's application security software products are simpler and more scalable to increase the resiliency of your application infrastructure.

Pandas logo Pandas

Pandas is an open source library providing high-performance, easy-to-use data structures and data analysis tools for the Python.
  • Veracode Landing page
    Landing page //
    2023-10-15
  • Pandas Landing page
    Landing page //
    2023-05-12

Veracode

$ Details
-
Release Date
2006 January
Startup details
Country
United States
City
Burlington
Founder(s)
Chris Wysopal
Employees
250 - 499

Veracode features and specs

  • Comprehensive Security Coverage
    Veracode offers a wide range of services including static analysis, dynamic analysis, software composition analysis, and manual penetration testing, providing comprehensive security coverage for applications.
  • Scalability
    Veracode's cloud-based platform is highly scalable, making it suitable for organizations of all sizes, from startups to large enterprises.
  • Ease of Use
    The platform is designed to be user-friendly, with an intuitive interface and comprehensive documentation, helping to reduce the learning curve for new users.
  • Integration Capabilities
    Veracode integrates seamlessly with various development tools and CI/CD pipelines, enhancing workflow efficiency and reducing friction for development teams.
  • Actionable Insights
    The platform provides detailed reports and actionable insights that help developers understand and address vulnerabilities more effectively.
  • Compliance Support
    Veracode helps organizations comply with various regulatory requirements such as GDPR, HIPAA, and PCI DSS by providing necessary security measures and documentation.
  • Regular Updates
    The platform is regularly updated with new features and security measures to keep up with the evolving threat landscape.

Possible disadvantages of Veracode

  • Cost
    Veracode may be expensive for small businesses and startups, especially those with limited budgets for cybersecurity.
  • False Positives
    Like many automated security tools, Veracode can sometimes generate false positives, which might require additional effort to review and validate.
  • Performance Impact
    Running extensive security scans, particularly dynamic analysis, can be resource-intensive and might impact application performance during the scanning process.
  • Learning Curve for Advanced Features
    While basic functionalities are straightforward, leveraging some of the more advanced features may require additional training and expertise.
  • Dependency on Internet Connectivity
    Being a cloud-based solution, Veracode requires reliable internet connectivity, which might be a limitation for organizations in areas with unstable internet access.
  • Limited Customizability
    Some users may find that the platform offers limited customization options compared to other on-premises solutions.
  • Support Response Time
    Some users have reported that the response time for customer support can be slower than expected, particularly during peak times.

Pandas features and specs

  • Data Wrangling
    Pandas offers robust tools for manipulating, cleaning, and transforming data, making it easier to prepare data for analysis.
  • Flexible Data Structures
    Pandas provides two primary data structures: Series and DataFrame, which are flexible and offer powerful capabilities for handling various types of datasets.
  • Integration with Other Libraries
    Pandas integrates seamlessly with other Python libraries such as NumPy, Matplotlib, and SciPy, facilitating comprehensive data analysis workflows.
  • Performance with Data Size
    For data sizes that fit into memory, Pandas performs excellently with operations and computations being highly optimized.
  • Rich Feature Set
    Pandas provides a wide array of functionalities, including but not limited to group-by operations, merging and joining data sets, time-series functionality, and input/output tools.
  • Community and Documentation
    Pandas has a strong community and extensive documentation, offering a wealth of tutorials, examples, and support for new and experienced users alike.

Possible disadvantages of Pandas

  • Memory Consumption
    Pandas can become memory inefficient with very large datasets because it relies heavily on in-memory operations.
  • Single-threaded
    Many Pandas operations are single-threaded, which can lead to performance bottlenecks when handling very large datasets.
  • Steep Learning Curve
    For users who are new to data analysis or Pandas, there can be a steep learning curve due to its extensive capabilities and complex syntax at times.
  • Less Suitable for Real-time Analytics
    Pandas is not designed for real-time analytics and is better suited for batch processing due to its in-memory operations and single-threaded nature.
  • Error Handling
    Error messages in Pandas can sometimes be cryptic and hard to interpret, making debugging a challenge for users.

Analysis of Veracode

Overall verdict

  • Overall, Veracode is a highly regarded solution in the realm of application security, offering robust features and integrations that make it suitable for businesses looking to strengthen their software security posture.

Why this product is good

  • Veracode is considered a good option for application security because it offers a comprehensive cloud-based platform that integrates with various DevOps tools and workflows, making it easy for organizations to maintain secure software development practices. It provides thorough static and dynamic analysis, software composition analysis, and manual penetration testing, all of which help identify and remediate vulnerabilities effectively. The platform's ease of integration and its ability to support multiple languages and frameworks add to its reputation as a reliable and efficient security tool.

Recommended for

    Veracode is particularly recommended for medium to large-sized enterprises that have substantial software development activities. It suits organizations that need to adhere to strict compliance requirements, such as those in finance, healthcare, and other regulated industries. Additionally, it is a good fit for teams that prioritize seamless integration with existing DevOps practices.

Analysis of Pandas

Overall verdict

  • Pandas is highly recommended for tasks involving data manipulation and analysis, especially for those working with tabular data. Its efficiency and ease of use make it a staple in the data science toolkit.

Why this product is good

  • Pandas is widely considered a good library for data manipulation and analysis due to its powerful data structures, like DataFrames and Series, which make it easy to work with structured data. It provides a wide array of functions for data cleaning, transformation, and aggregation, which are essential tasks in data analysis. Furthermore, Pandas seamlessly integrates with other libraries in the Python ecosystem, making it a versatile tool for data scientists and analysts. Its extensive documentation and strong community support also contribute to its reputation as a reliable tool for data analysis tasks.

Recommended for

    Pandas is particularly recommended for data scientists, analysts, and engineers who need to perform data cleaning, transformation, and analysis as part of their work. It is also suitable for academics and researchers dealing with data in various formats and needing powerful tools for their data-driven research.

Veracode videos

Veracode Explained in 2 Minutes

More videos:

  • Review - Navigate the Veracode Homepage, Submit a Static Scan, and Review Results
  • Review - Veracode Review (Real User: Tim Jee)

Pandas videos

Ozzy Man Reviews: Pandas

More videos:

  • Review - Ozzy Man Reviews: PANDAS Part 2
  • Review - Trash Pandas Review with Sam Healey

Category Popularity

0-100% (relative to Veracode and Pandas)
Web Application Security
100 100%
0% 0
Data Science And Machine Learning
Code Analysis
100 100%
0% 0
Data Science Tools
0 0%
100% 100

User comments

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Reviews

These are some of the external sources and on-site user reviews we've used to compare Veracode and Pandas

Veracode Reviews

The Top 11 Static Application Security Testing (SAST) Tools
Veracode Standout Features: Key features include support for over 100 languages and frameworks, integration with IDEs and APIs for custom workflows, extensive documentation, and a low false positive rate. Veracode integrates seamlessly with popular development tools, offering a centralized management portal and a scalable cloud architecture.
Top 11 SonarQube Alternatives in 2024
Veracode is a leading provider of application security solutions. It offers a comprehensive suite of security testing tools that help organizations identify and remediate vulnerabilities in their applications. Veracode's tools are used by a wide range of organizations, from small businesses to large enterprises, to protect their applications from cyberattacks.
Source: www.codeant.ai
The 5 Best SonarQube Alternatives in 2024
Veracode's extensive integrations and focus on working within existing developer environments address the "not engineer-friendly" complaint sometimes leveled at SonarQube, and Veracode's interactive developer education features can help teams build security knowledge over time, potentially easing the steep learning curve associated with security tools.
Source: blog.codacy.com
Ten Best SonarQube alternatives in 2021
Veracode helps groups that innovate via software programs deliver comfy code on time. Veracode contrasts to on-premise answers, which can be tough to scale and targeted on finding instead of solving.
Source: duecode.io
TOP 40 Static Code Analysis Tools (Best Source Code Analysis Tools)
Veracode is a static analysis tool that is built on the SaaS model. This tool is mainly used to analyze the code from a security point of view.

Pandas Reviews

25 Python Frameworks to Master
Pandas is a powerful and flexible open-source library used to perform data analysis in Python. It provides high-performance data structures (i.e., the famous DataFrame) and data analysis tools that make it easy to work with structured data.
Source: kinsta.com
Python & ETL 2020: A List and Comparison of the Top Python ETL Tools
When it comes to ETL, you can do almost anything with Pandas if you're willing to put in the time. Plus, pandas is extraordinarily easy to run. You can set up a simple script to load data from a Postgre table, transform and clean that data, and then write that data to another Postgre table.
Source: www.xplenty.com

Social recommendations and mentions

Based on our record, Pandas seems to be more popular. It has been mentiond 219 times since March 2021. We are tracking product recommendations and mentions on various public social media platforms and blogs. They can help you identify which product is more popular and what people think of it.

Veracode mentions (0)

We have not tracked any mentions of Veracode yet. Tracking of Veracode recommendations started around Mar 2021.

Pandas mentions (219)

  • Top Programming Languages for AI Development in 2025
    Libraries for data science and deep learning that are always changing. - Source: dev.to / about 1 month ago
  • How to import sample data into a Python notebook on watsonx.ai and other questions…
    # Read the content of nda.txt Try: Import os, types Import pandas as pd From botocore.client import Config Import ibm_boto3 Def __iter__(self): return 0 # @hidden_cell # The following code accesses a file in your IBM Cloud Object Storage. It includes your credentials. # You might want to remove those credentials before you share the notebook. Cos_client = ibm_boto3.client(service_name='s3', ... - Source: dev.to / 2 months ago
  • How I Hacked Uber’s Hidden API to Download 4379 Rides
    As with any web scraping or data processing project, I had to write a fair amount of code to clean this up and shape it into a format I needed for further analysis. I used a combination of Pandas and regular expressions to clean it up (full code here). - Source: dev.to / 2 months ago
  • Must-Know 2025 Developer’s Roadmap and Key Programming Trends
    Python’s Growth in Data Work and AI: Python continues to lead because of its easy-to-read style and the huge number of libraries available for tasks from data work to artificial intelligence. Tools like TensorFlow and PyTorch make it a must-have. Whether you’re experienced or just starting, Python’s clear style makes it a good choice for diving into machine learning. Actionable Tip: If you’re new to Python,... - Source: dev.to / 4 months ago
  • Sample Super Store Analysis Using Python & Pandas
    This tutorial provides a concise and foundational guide to exploring a dataset, specifically the Sample SuperStore dataset. This dataset, which appears to originate from a fictional e-commerce or online marketplace company's annual sales data, serves as an excellent example for learning and how to work with real-world data. The dataset includes a variety of data types, which demonstrate the full range of... - Source: dev.to / 10 months ago
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What are some alternatives?

When comparing Veracode and Pandas, you can also consider the following products

Checkmarx - The industry’s most comprehensive AppSec platform, Checkmarx One is fast, accurate, and accelerates your business.

NumPy - NumPy is the fundamental package for scientific computing with Python

Acunetix Vulnerability Scanner - Acunetix Vulnerability Scanner is a platform that offers a web vulnerability scanner and provides security testing to users for their web applications.

Scikit-learn - scikit-learn (formerly scikits.learn) is an open source machine learning library for the Python programming language.

GitLab - Create, review and deploy code together with GitLab open source git repo management software | GitLab

OpenCV - OpenCV is the world's biggest computer vision library