Cutting-Edge Consensus Algorithms in Scalable and Interoperable Blockchain (Record no. 17028)

MARC details
000 -LEADER
fixed length control field 04892nam a2200205Ia 4500
008 - FIXED-LENGTH DATA ELEMENTS--GENERAL INFORMATION
fixed length control field 250107s9999 xx 000 0 und d
082 ## - DEWEY DECIMAL CLASSIFICATION NUMBER
Classification number 1005.74
Item number V829C
100 ## - MAIN ENTRY--PERSONAL NAME
Personal name Vishwakarma, Lokendra
9 (RLIN) 46887
245 #0 - TITLE STATEMENT
Title Cutting-Edge Consensus Algorithms in Scalable and Interoperable Blockchain
Statement of responsibility, etc. by Lokendra Vishwakarma
260 ## - PUBLICATION, DISTRIBUTION, ETC.
Place of publication, distribution, etc. Department of Computert Science and Engineering
Name of publisher, distributor, etc. Indian Institute of Technology, Jodhpur
Date of publication, distribution, etc. 2024
300 ## - PHYSICAL DESCRIPTION
Extent xviii, 180p.
Other physical details ill; includes bibliography
500 ## - GENERAL NOTE
General note The development of consensus algorithms is crucial for enhancing the scalability and interoperability of blockchain technology, which is key to its wider adoption. However, existing consensus algorithms, including Proof-of-Work (PoW), Proof-of-Stake (PoS), and Practical Byzantine Fault Tolerance (PBFT), face challenges such as high consensus delay, low throughput, and limited transaction scalability, primarily due to their high computational and communication complexity. Moreover, these algorithms rely on third parties to communicate across diverse blockchain platforms, making blockchain vulnerable, which emphasizes the necessity for interoperable solutions. In addition, ensuring information privacy within blockchain systems remains a significant challenge. Therefore, in this thesis, we develop novel consensus algorithms while focusing on improving consensus delay and throughput. The proposed modified Practical Byzantine Fault Tolerance (mPBFT) and Lightweight Consensus Algorithm (LCA) consensus algorithms are the improvement over the PBFT consensus protocol, which reduces the computation and communication complexity. The GridChain (a reputation based consensus algorithm) and Weighted Node Selection Byzantine Fault Tolerance (WNS-BFT) are the reputation and trust-based consensus algorithms that establish trust among the nodes while keeping the performance high. Additionally, to improve the performance further, we have developed a technique called BlockTree (a nonlinear structured, scalable, and distributed ledger) and UnoShard (Harmonizing Scalability and Security) schemes that address the issue of limited scalability by enabling the parallel processing of transactions. Furthermore, to address the interoperability issues between the diverse blockchain platforms, we developed a technique called CrossLedger (a pioneer cross-chain asset transfer protocol) that eliminates the presence of third parties for communication. This thesis has also addressed the issue of information privacy in the proposed technique called zk-SGB, a privacy-preserved blockchain framework for energy trading in a smart grid using zero-knowledge-proof (ZKP) without compromising system integrity. Next, this thesis discusses the various applications based on blockchain technology, such as the Internet of Things (IoT), Intelligent Transportation Systems (ITS), and Energy Trading in the Smart Grid. We have developed three schemes for IoT using smart contracts. The first scheme is a BLISS (Blockchain-based Integrated Security System for Internet of Things (IoT) Applications), and the second scheme is SCAB-IoTA (Secure Communication and Authentication for IoT Applications using Blockchain. We have implemented these schemes on the Ethereum blockchain testnet. Additionally, we have developed a testbed using Raspberry Pi devices to show the efficiency of the proposed scheme. Furthermore, we have developed two schemes for ITS. The first scheme is a LBSV ( Lightweight Blockchain Security Protocol for Secure Storage and Communication in SDN-Enabled IoV), and the second scheme is SmartCoin (A Novel Incentive Mechanism for Vehicles in Intelligent Transportation System Based on Consortium Blockchain). The LBSV and SmartCoin work on mPBFT and LCA consensus algorithms, respectively. Furthermore, we have also developed three schemes for the smart grid application. The first scheme is a SmartGrid-NG (Blockchain Protocol for Secure Transaction Processing in the Next Generation Smart Grid), the second scheme is an ETradeChain (Blockchain-Based Energy Trading in the Local Energy Market (LEM) Using a Modified Double Auction Protocol), and the third scheme is zk-SGB (Privacy-Preserved Blockchain Framework for Energy Trading in Smart Grid Using Zero Knowledge Proof). The first two schemes are focused on trading and transaction processing and work on GridChain and two-level consensus algorithms, respectively. The zk-SGB is designed to achieve privacy in smart grid transaction processing and works on the WNS-BFT consensus algorithm. A Raspberry Pi 4 Model B devices based testbed has been developed for the implementation of ITS and smart grid schemes.
650 ## - SUBJECT ADDED ENTRY--TOPICAL TERM
Topical term or geographic name entry element Blockchain Technology
9 (RLIN) 46888
Topical term or geographic name entry element Computer Science
Topical term or geographic name entry element Consensus Algorithms
9 (RLIN) 46164
Topical term or geographic name entry element PhD Theses
9 (RLIN) 42348
700 ## - ADDED ENTRY--PERSONAL NAME
Personal name Das, Debasis
Relator term Supervisor
942 ## - ADDED ENTRY ELEMENTS (KOHA)
Source of classification or shelving scheme
Koha item type Thesis
Holdings
Withdrawn status Lost status Source of classification or shelving scheme Damaged status Not for loan Home library Current library Shelving location Date acquired Total Checkouts Full call number Barcode Date last seen Price effective from Koha item type
    Dewey Decimal Classification     S. R. Ranganathan Learning Hub S. R. Ranganathan Learning Hub   2025-01-07   005.74 V829C TP00166 2025-01-07 2025-01-07 Thesis