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Master Cryptography: Basics, Advanced, and Post-Quantum
Last updated 12/2025
Created by Vertex Academy
MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHz, 2 Ch
Level: Intermediate | Genre: eLearning | Language: English | Duration: 115 Lectures ( 34h 37m ) | Size: 46.8 GB

Build strong foundations, tackle today's advanced algorithms, and prepare for quantum‑era security challenges.

What you'll learn
Apply advanced cryptographic algorithms and security notions to design and evaluate secure communication systems.
Critically evaluate and select post-quantum cryptographic schemes for future-proofing applications.
Implement and analyze protocols using RSA, ECC, and hash-based mechanisms, assess vulnerabilities, and propose mitigations grounded in formal security proofs.
Compare lattice-based, code-based, isogeny-based, and hash-based approaches, considering performance, security assumptions, and resistance to quantum attacks.
Distinguish cryptology vs. cryptography, core goals, adversary models, and security notions (IND‑CPA/CCA, EUF‑CMA).
Implement and analyze stream ciphers (including LFSRs) and block ciphers with secure modes of operation.
Understand and harden RSA: exponentiation, CRT, common pitfalls, and modern attack surfaces.
Apply and secure Diffie-Hellman, ElGamal, and ECC variants (Edwards, Montgomery, Weierstrass) with constant‑time techniques.
Model and measure hash security: collision/second‑preimage resistance, Pollard's rho methods, and sponge constructions.
Solve and defend discrete logarithm systems; implement BSGS, Pohlig-Hellman, and assess cost models (DLP/CDHP/DDHP).
Evaluate authenticated encryption, MACs, KEM‑DEM, blind/undeniable signatures, and key agreement protocols.
Grasp quantum algorithms (Shor, Grover, Simon) and their impact on RSA/DLP, plus the PQC landscape.
Dive into code‑based, hash‑based, lattice‑based, isogeny‑based, and MQ cryptosystems-concepts, constructions, and attacks.
Translate theory to practice: identify timing side channels, ensure constant‑time scalar multiplication, and avoid bad randomness.

Description
This end‑to‑end cryptography course takes you from the foundations of cryptology to advanced systems and the post‑quantum future. You'll build a deep understanding of stream and block ciphers, RSA, ECC, hash functions, security notions, attacks, and proofs-then explore quantum computing's impact and leading PQC families (code‑based, hash‑based, lattice‑based, isogeny‑based, MQ). Designed for engineers, researchers, and security practitioners who want both mathematical rigor and practical, real‑world perspective.

In a world where data drives everything-from financial transactions to national security-the integrity of cryptographic systems is non-negotiable. This course is your complete journey through the science and art of securing information, starting with the roots of cryptology and advancing to the cutting edge of post-quantum cryptography.

We begin with the fundamentals: historical ciphers, modular arithmetic, and the Extended Euclidean Algorithm, building a strong mathematical foundation. From there, you'll explore modern cryptographic primitives-stream and block ciphers, hash functions, message authentication codes, and public-key systems like RSA and Diffie-Hellman. You'll learn not just how these algorithms work, but why they matter, and where they fail.

As the course progresses, we dive into advanced topics: elliptic-curve cryptography, discrete logarithm systems, and formal security proofs. You'll analyze real-world attacks, understand timing vulnerabilities, and discover how implementation details can make or break security.

Finally, we look ahead to the quantum era. With Shor's and Grover's algorithms threatening classical cryptosystems, post-quantum cryptography is no longer optional-it's essential. You'll gain insight into lattice-based, code-based, hash-based, and isogeny-based schemes, equipping you to evaluate and adopt quantum-resistant solutions.

This course blends theory with practical intuition, giving you the tools to design, analyze, and future-proof cryptographic systems. Whether you're an engineer, researcher, or security strategist, you'll leave with the confidence to navigate today's challenges and tomorrow's quantum threats.

Enroll now and master the language of security-because the future of trust depends on it.

Course features

Structured progression from basics → advanced → post‑quantum.

144 lectures of over 34 hours on-demand content + slides and resources for each lecture for download скачать

Preview‑enabled lectures to sample the delivery style before enrolling (see curriculum).

Clear separation of theory, attacks, proofs, and implementation guidance.

Frequent cross‑links between algebraic properties and real‑world security pitfalls.

This course includes materials licensed under the Creative Commons Attribution license. Original work by Tanja Lange has been used across the course.

Who this course is for
Software engineers and security practitioners implementing or reviewing cryptographic components.
Researchers and students seeking rigorous math plus practical cryptanalysis intuition.
Architects and tech leads evaluating cryptographic protocols and post‑quantum migrations.
Policy/strategy advisors needing a clear grasp of cryptographic risk and future readiness.

Homepage

Код:
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