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Existing solutions (e.g., mixnets, zk-privacy schemes, off-chain relayers) often trade off composability or sacrifice verifiability, which are core properties of smart contracts. @zama proposes a different approach: Confidential Smart Contracts powered by Fully Homomorphic Encryption (FHE). FHE enables: + Computation directly on encrypted data: contracts can execute full logic without ever decrypting sensitive inputs. + Preserved composability and on-chain verification: privacy of inputs is maintained while outputs remain publicly verifiable. + No protocol changes required: transactions remain fast and fully compatible with today’s blockchain infrastructure. With Confidential Smart Contracts, DeFi can enter a new paradigm: + Users: protect their identity, positions, and trading strategies. + Protocols: maintain transparency, auditability, and scalability. + Regulators: gain access to auditable decryption events, ensuring compliance when necessary. #ZamaCreatorProgram
The ZAMA project has emerged as a pioneering initiative in the field of data security and privacy, addressing one of the most important challenges of the digital age. Founded by a group of visionary cryptographers and computer scientists, with the vision of developing Fully Homomorphic Encryption (FHE) technology into a practical and accessible solution for real-world applications. Although FHE has existed as a concept for many years, FHE technology remains inaccessible and complex, requiring deep expertise and significant computational resources to implement. Without @zama, small organizations and SMEs would struggle to adopt FHE due to the lack of user-friendly tools, libraries, and resources. Therefore, Zama continuously researches and improves FHE algorithms to develop a user-friendly platform, providing open source tools and optimized frameworks that simplify the integration of FHE into real-world applications. This allows businesses to adopt this advanced encryption technology. @zama #ZamaCreatorProgram
In its early days, the concept was considered more of a mathematical dream than a practical tool — researchers questioned whether it could ever be realized beyond theory. The turning point came in 2009, when Craig Gentry introduced the first viable FHE construction using lattices and the bootstrapping technique. This breakthrough shifted the focus from possibility to practicality. Since then, the race has been about making FHE efficient, scalable, and accessible for real-world applications. It is within this new chapter that Zama has positioned itself as a pioneer. Rather than keeping FHE locked within the academic sphere, Zama is pushing the technology into the hands of developers, enterprises, and innovators worldwide. By building open-source libraries such as Concrete and Concrete ML, Zama dramatically lowers the barrier to entry, allowing anyone to implement FHE in their systems without needing deep cryptographic expertise. @zama #ZamaCreatorProgram
The origin of Fully Homomorphic Encryption (FHE) dates back to 1978, when Rivest, Adleman, and Dertouzos introduced the concept of “privacy homomorphisms”, allowing computations on encrypted data without decryption. However, at that time, no practical method existed to realize this idea. From the 1980s to 2000s, partially homomorphic encryption (PHE) schemes emerged, supporting only a single type of operation: RSA and ElGamal supported multiplicative homomorphism, while Paillier supported additive homomorphism. These schemes were still not powerful enough to become fully homomorphic. A breakthrough occurred in 2009, when Craig Gentry (IBM) published the first practical FHE design in his PhD dissertation at Stanford, using ideal lattices and the bootstrapping technique to remove noise. From the 2010s onward, many new FHE schemes and libraries, such as BGV, BFV, CKKS, and TFHE, have been developed, bringing the technology closer to practical applications. #ZamaCreatorProgram FHE of @zama.. next content 👀