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Kaspa

Kaspa price (KAS)

Buying Kaspa on Europe’s leading retail broker for buying and selling digital assets is easy, fast and secure.

Kaspa

Kaspa price (KAS)

Buying Kaspa on Europe’s leading retail broker for buying and selling digital assets is easy, fast and secure.

€0.0290

-€0.0007-2.49 %
-€0.0007-2.49 %



This converter shows values for info only and doesn’t reflect actual transaction rates.

Last updated: 9/14/2026, 3:10:00 PM

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Crypto-assets are highly volatile. You could sustain a loss of some or all of your investment, so it is important to invest only what you can afford to lose. For a detailed overview of the risks, please review the Risk Disclosure.

Crypto-assets are highly volatile. You could sustain a loss of some or all of your investment, so it is important to invest only what you can afford to lose. For a detailed overview of the risks, please review the Risk Disclosure.

Price of Kaspa today

Review the latest Kaspa price movements. Here is today’s trend at a glance: -2.49 %

Kaspa price statistics

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Kaspa market stats

  • Daily high

    €0.03

  • Daily low

    €0.03

  • Volatility (1M)

    21.87%

  • 52W High

    €0.08

  • 52W Low

    €0.01

  • Market cap

    €794.23M

Kaspa conversion table

1 EUR

34.45 KAS

5 EUR

172.26 KAS

10 EUR

344.52 KAS

15 EUR

516.78 KAS

20 EUR

689.04 KAS

25 EUR

861.30 KAS

1 Kaspa (KAS) to Us Dollar (USD)

USD 0.03

1 Kaspa (KAS) to Swiss Franc (CHF)

CHF 0.03

1 Kaspa (KAS) to British Pound Sterling (GBP)

GBP 0.02

1 Kaspa (KAS) to Turkish Lira (TRY)

TRY 1.63

1 Kaspa (KAS) to Polish Zloty (PLN)

PLN 0.13

1 Kaspa (KAS) to Hungarian Forint (HUF)

HUF 10.56

1 Kaspa (KAS) to Czech Koruna (CZK)

CZK 0.70

1 Kaspa (KAS) to Norwegian Krone (NOK)

NOK 0.31

1 Kaspa (KAS) to Swedish Krona (SEK)

SEK 0.33

1 Kaspa (KAS) to Danish Krone (DKK)

DKK 0.22

1 Kaspa (KAS) to Romanian Leu (RON)

RON 0.15

About Kaspa (KAS)

Kaspa is a decentralised digital currency built on the innovative Kaspa protocol. KAS offers a secure and scalable solution for fast and efficient transactions, employing a unique Ghostdag consensus algorithm, enabling high throughput and low latency while maintaining network security. Its advanced features include double-spending protection and enhanced privacy measures.

  • Regulated

    Austria based and European regulated crypto & securities broker platform

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  • Safe and secure

    Funds secured in offline wallets. Fully compliant with European data, IT and money laundering standards.

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  • Trusted

    7+ million happy users. Excellent Trustpilot rating.

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  • ESG (Environmental, Social, and Governance) regulations for crypto assets aim to address their environmental impact (e.g., energy-intensive mining), promote transparency, and ensure ethical governance practices to align the crypto industry with broader sustainability and societal goals. These regulations encourage compliance with standards that mitigate risks and foster trust in digital assets.

    Name

    Bitpanda Asset Management GmbH, Bitpanda GmbH

    Relevant legal entity identifier

    9845005X9B7N610K0093, 5493007WZ7IFULIL8G21

    Name of the crypto-asset

    Kaspa

    Consensus Mechanism

    The Kaspa blockchain uses a unique Proof-of-Work consensus mechanism called the GHOSTDAG (Greedy Heaviest Observed Subtree Directed Acyclic Graph) protocol. GHOSTDAG is designed to offer high throughput, low latency, and secure finality, addressing scalability and performance challenges typically faced by traditional blockchain systems. Key Features of Kaspa's Consensus Mechanism: 1. Directed Acyclic Graph (DAG) Structure: Kaspa operates on a DAG, allowing multiple blocks to be produced simultaneously and linked together in a way that eliminates the need for a single linear chain. This allows for parallel block production, significantly increasing the overall throughput of the network. Unlike traditional blockchains where only the longest chain is considered valid, Kaspa allows blocks to coexist, increasing transaction throughput and scalability. 2. GHOSTDAG Protocol: The GHOSTDAG protocol resolves the challenges that arise in DAG-based networks by ensuring a consistent ordering of blocks. It uses the concept of "growing" blocks from the heaviest observed subtree, meaning that new blocks are integrated into the DAG in a way that prioritizes the most secure and valid branches. This mechanism allows Kaspa to maintain finality and avoid forks while increasing the overall throughput of the system. 3. High Throughput and Low Latency: Kaspa's GHOSTDAG protocol enables high-speed block confirmation without sacrificing security, processing thousands of transactions per second with low latency. 4. Proof of Work (PoW): Kaspa utilizes Proof of Work (PoW) for block validation, where miners must solve cryptographic puzzles to add new blocks to the DAG. This ensures the integrity and security of the network while making the mining process decentralized and permissionless. The PoW ensures that no single miner or group can control the network, contributing to the decentralized nature of Kaspa. 5. Simultaneous Block Creation: In Kaspa, blocks are created in parallel by miners, and their validity is determined by the consensus protocol (GHOSTDAG), allowing for high scalability and fast block times (approximately one block every second). 6. Block Finality: Once a block is added to the DAG and supported by a sufficient number of subsequent blocks, it achieves finality, meaning it cannot be reverted or reorganized.

    Incentive Mechanisms and Applicable Fees

    Kaspa employs a Proof-of-Work (PoW) consensus mechanism to secure its network and incentivize participants. Miners validate transactions and add new blocks to the DAG (Directed Acyclic Graph) structure, earning rewards for their efforts. Incentive Mechanism: 1. Mining Rewards: Block Rewards: Miners receive newly minted KAS tokens as rewards for successfully mining new blocks. The block reward decreases over time, following a predetermined schedule, to control the total supply of KAS tokens. Transaction Fees: In addition to block rewards, miners earn transaction fees from the transactions included in the blocks they mine. Users pay these fees to incentivize miners to prioritize their transactions. 2. Transaction Fees: Users pay transaction fees to have their transactions processed and included in the blockchain. These fees are determined by the size of the transaction and the current network conditions. Higher fees can expedite transaction inclusion, especially during periods of high network activity. Applicable Fees: 1. Transaction Fees: Transaction fees are calculated based on the size of the transaction, measured in bytes. The fee rate is dynamic and adjusts according to network congestion and demand. Users can estimate appropriate fee rates using tools like the Rusty Kaspa node's getFeeEstimate() RPC method, which provides real-time fee rate suggestions based on current network conditions. 2. Fee Rate and Quality of Service (QoS): The fee rate influences the priority of transactions. A higher fee rate increases the likelihood of a transaction being included in the next block, ensuring faster confirmation times. Kaspa's fee structure allows users to adjust their fee rates to balance cost and transaction speed according to their preferences.

    Beginning of the period

    2024-09-09

    End of the period

    2025-09-09

    Energy consumption

    2831162818.95504 (kWh/a)

    Energy consumption resources and methodologies

    For the calculation of energy consumptions, the so called 'top-down' approach is being used, within which an economic calculation of the miners is assumed. Miners are persons or devices that actively participate in the proof-of-work consensus mechanism. The miners are considered to be the central factor for the energy consumption of the network. Hardware is pre-selected based on the consensus mechanism's hash algorithm: KHeavyhash. A current profitability threshold is determined on the basis of the revenue and cost structure for mining operations. Only Hardware above the profitability threshold is considered for the network. The energy consumption of the network can be determined by taking into account the distribution for the hardware, the efficiency levels for operating the hardware and on-chain information regarding the miners' revenue opportunities. If significant use of merge mining is known, this is taken into account. When calculating the energy consumption, we used - if available - the Functionally Fungible Group Digital Token Identifier (FFG DTI) to determine all implementations of the asset of question in scope and we update the mappings regulary, based on data of the Digital Token Identifier Foundation. The information regarding the hardware used and the number of participants in the network is based on assumptions that are verified with best effort using empirical data. In general, participants are assumed to be largely economically rational. As a precautionary principle, we make assumptions on the conservative side when in doubt, i.e. making higher estimates for the adverse impacts.

    Renewable energy consumption

    29.306425042 (%)

    Energy intensity

    3.52573 (kWh)

    Scope 1 DLT GHG emissions - Controlled

    0.00000 (tCO2e/a)

    Scope 2 DLT GHG emissions - Purchased

    1166427.93040 (tCO2e/a)

    GHG intensity

    1.45259 (kgCO2e)

    Key energy sources and methodologies

    To determine the proportion of renewable energy usage, the locations of the nodes are to be determined using public information sites, open-source crawlers and crawlers developed in-house. If no information is available on the geographic distribution of the nodes, reference networks are used which are comparable in terms of their incentivization structure and consensus mechanism. This geo-information is merged with public information from Our World in Data, see citation. The intensity is calculated as the marginal energy cost wrt. one more transaction. Ember (2025); Energy Institute - Statistical Review of World Energy (2024) - with major processing by Our World in Data. “Share of electricity generated by renewables - Ember and Energy Institute” [dataset]. Ember, “Yearly Electricity Data Europe”; Ember, “Yearly Electricity Data”; Energy Institute, “Statistical Review of World Energy” [original data]. Retrieved from https://ourworldindata.org/grapher/share-electricity-renewables.

    Key GHG sources and methodologies

    To determine the GHG Emissions, the locations of the nodes are to be determined using public information sites, open-source crawlers and crawlers developed in-house. If no information is available on the geographic distribution of the nodes, reference networks are used which are comparable in terms of their incentivization structure and consensus mechanism. This geo-information is merged with public information from Our World in Data, see citation. The intensity is calculated as the marginal emission wrt. one more transaction. Ember (2025); Energy Institute - Statistical Review of World Energy (2024) - with major processing by Our World in Data. “Carbon intensity of electricity generation - Ember and Energy Institute” [dataset]. Ember, “Yearly Electricity Data Europe”; Ember, “Yearly Electricity Data”; Energy Institute, “Statistical Review of World Energy” [original data]. Retrieved from https://ourworldindata.org/grapher/carbon-intensity-electricity Licenced under CC BY 4.0.