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Punit Kumar

Publications and source records attributed to Punit Kumar.

At least 19 recordsLinked to original sources

Echelon: Auditable Aggregate-Only Language-Model Adaptation Across Privacy Boundaries

Cross-organization language-model adaptation increasingly faces hard governance constraints: in many deployments, device-level model state-parameters, activations, optimizer state, and per-device updates-cannot be exported outside an administrative boundary. Existing distributed and federated stacks typically assume cross-site model exchange and then retrofit privacy mechanisms, which complicates compliance and makes auditing brittle. We present Echelon, a boundary-first training architecture that enforces device-level model-state non-export as a systems invariant. Devices train locally inside each boundary; the only cross-boundary payloads are securely aggregated boundary-level deltas plus O(1) coordination metadata, exposed through a concrete audit surface. Restricting exchange to aggregates changes the optimization problem: the system must remain stable under WAN delay, heterogeneous participation, churn, and non-IID data even though the global plane never sees per-device updates. Echelon combines buffered semi-asynchronous secure aggregation, staleness-aware weighting, participation windows, proximal local objectives, and a drift-aware outer synchronization controller. In 1B-parameter LoRA adaptation across M= 2 boundaries, a budget-matched contest over three seeds (24.88M tokens) reaches validation loss 3.887 +/-0.010 and is best or tied-best among tuned low-communication baselines under fixed-token, fixed-bytes, fixed-wall-clock, and fixed-sync-count budgets. In OpenWebText stress tests, Echelon sustains 2,139-2,176 tokens/s across evaluated WAN and non-IID treatments, Echelon-DA improves time-to-target under WAN latency relative to a privacy-parityDiLoCo+SA baseline, and quality degrades by at most 2.2% under 200ms emulated latency or severe non-IID partitioning.

cs.CR

Attention-Based Offline Reinforcement Learning and Clustering for Interpretable Sepsis Treatment

Sepsis remains one of the leading causes of mortality in intensive care units, where timely and accurate treatment decisions can significantly impact patient outcomes. In this work, we propose an interpretable decision support framework. Our system integrates four core components: (1) a clustering-based stratification module that categorizes patients into low, intermediate, and high-risk groups upon ICU admission, using clustering with statistical validation; (2) a synthetic data augmentation pipeline leveraging variational autoencoders (VAE) and diffusion models to enrich underrepresented trajectories such as fluid or vasopressor administration; (3) an offline reinforcement learning (RL) agent trained using Advantage Weighted Regression (AWR) with a lightweight attention encoder and supported by an ensemble models for conservative, safety-aware treatment recommendations; and (4) a rationale generation module powered by a multi-modal large language model (LLM), which produces natural-language justifications grounded in clinical context and retrieved expert knowledge. Evaluated on the MIMIC-III and eICU datasets, our approach achieves high treatment accuracy while providing clinicians with interpretable and robust policy recommendations.

cs.LG

Plasma-Enhanced Germination in North Indian Wheat

The application of nonthermal plasma in agriculture has emerged as a sustainable and eco-friendly method to enhance seed vigor, germination, and crop productivity. This study investigates the effects of atmospheric pressure plasma treatment on five popular bread wheat varieties of North India, WH 1142, HI 1544, GW 366, GW 322, and GW 273. Direct dielectric barrier discharge (DBD) plasma exposure and plasma activated water irrigation were tested. Results indicated significant improvements in seed wettability, germination index, root and shoot growth, spike length, and grain yield compared to controls. Among treatments, 3 min DBD exposure and 15 min PAW irrigation consistently produced the best results, with variety specific differences in vigor and yield. These findings demonstrate the potential of plasma seed treatment as a chemical free technology to enhance productivity in wheat, contributing to sustainable agriculture in India.

physics.plasm-ph

Plasma-Activated Zn, Fe, Mn Micronutrient Solutions for Crop Biofortification

Micronutrient deficiency in soils limits crop productivity and reduces the nutritional quality of cereals and pulses. Conventional fertilizer supplementation often suffers from low bioavailability and environmental losses. In this study, we investigate the use of Plasma Activated Water (PAW) enriched with divalent micronutrient ions as a sustainable alternative to enhance nutrient uptake, soil fertility, and seed vigor. The PAW was generated using a gliding arc plasma system in air, and ion-enriched solutions were prepared at controlled concentrations. The physicochemical parameters (pH, ORP, conductivity, RONS species) were analyzed to assess the plasma induced reactivity. Treatments were applied to micronutrient deficient soils for wheat (Triticum aestivum) and chickpea (Cicer arietinum) seeds under greenhouse conditions. Results demonstrated significant enhancement in germination index, chlorophyll content, and shoot root biomass compared to controls. PAW and ionic treatments notably increased the micronutrient content in grains, indicating effective biofortification. Soil microbial activity and enzyme assays showed no toxicity and a mild stimulatory effect due to reactive nitrogen species. This study establishes a green, scalable method of delivering micronutrients through plasma-activated irrigation water, linking plasma chemistry with sustainable agronomy and nutritional security.

q-bio.OT

RONS Generation in Plasma-Activated Saline for Wound Healing

This study explores the physicochemical modifications and antimicrobial potential of plasma activated saline generated by exposing Sodium Chloride and Ringer solution to atmospheric pressure dielectric barrier discharge plasma. Plasma activation produced reactive oxygen and nitrogen species leading to changes in pH, redox potential, conductivity and concentrations of Hydrogen Peroxide, Nitrogen and Nitrous Oxides. Effects of activation time, voltage, and gas composition were analyzed. Antimicrobial activity against Staphylococcus aureus, Pseudomonas aeruginosa and E coli was assessed via MIC, CFU reduction and biofilm inhibition tests. Optimal plasma exposure achieved strong microbial inactivation with good biocompatibility. SEM and FTIR confirmed membrane damage, supporting PAS as a safe, nonantibiotic wound irrigation and disinfectant solution.

physics.plasm-ph

Plasma-Activated Water (PAW) for the Degradation of Organic Pollutants in Diluted Industrial Effluents

Plasma activated water (PAW) offers a sustainable, nonthermal solution for degrading persistent organic pollutants in industrial effluents. This study employed a gliding arc plasma system to generate PAW for treating diluted waste water containing dyes, pesticides, and pharmaceuticals. Experimental parameters such as exposure time, dilution ratio, and pollutant concentration were varied, with analysis conducted using UV Vis spectroscopy, HPLC, TOC, and COD. Results showed high degradation efficiencies, up to 90% for dyes, 85% for pesticides, and 80% for pharmaceuticals following pseudo first order kinetics driven by hydroxyl and nitrate or nitrite radicals. The findings demonstrate PAWs potential as a green, scalable wastewater treatment strategy that minimizes chemical use, supports water reuse, and enhances environmental safety, with future scope for pilot scale applications.

physics.plasm-ph

Synergistic Bioactivity of Neem and Tulsi Infusions Treated with Plasma-Activated Water

The integration of plasma activated water (PAW) with herbal infusions offers a sustainable approach to enhancing the functional bioactivity of plant derived compounds. In this study, neem (Azadirachta indica) and tulsi (Ocimum sanctum) infusions were treated with PAW generated using an atmospheric pressure gliding arc discharge system. The aim was to investigate plasma induced modifications in phytochemicals and their subsequent effects on antimicrobial and antioxidant properties. Spectroscopic (UV Vis, FTIR) and chromatographic (HPLC) analyses demonstrated structural alterations in key polyphenolic constituents, accompanied by mild acidification and changes in redox potential. Total phenolic content (TPC) and flavonoid levels increased significantly following 10 min PAW treatment, while prolonged exposure (15 min) led to partial degradation, suggesting an optimum treatment window. Antioxidant assays (DPPH, ABTS, FRAP) confirmed improved radical scavenging capacity, correlating with enhanced reducing power of modified phytochemicals. Antimicrobial evaluation against Escherichia coli and Staphylococcus aureus revealed synergistic inhibitory effects, with reduced minimum inhibitory concentrations (MIC) for PAW-treated infusions. Collectively, the results highlight the potential of PAW to modulate herbal bioactives, extending their efficacy in natural preservation systems and biomedical formulations. This green plasma-herbal synergy provides a promising pathway toward eco-friendly food safety and healthcare applications.

physics.plasm-ph

Energy Consumption of Dataframe Libraries for End-to-End Deep Learning Pipelines:A Comparative Analysis

This paper presents a detailed comparative analysis of the performance of three major Python data manipulation libraries - Pandas, Polars, and Dask - specifically when embedded within complete deep learning (DL) training and inference pipelines. The research bridges a gap in existing literature by studying how these libraries interact with substantial GPU workloads during critical phases like data loading, preprocessing, and batch feeding. The authors measured key performance indicators including runtime, memory usage, disk usage, and energy consumption (both CPU and GPU) across various machine learning models and datasets.

cs.SE

Effect of superthermal electrons on the Quantum electron acoustic double layers in dense astrophysical plasmas

Electron acoustic double layers (EADLs) have been investigated in four component unmagnetized dense quantum plasmas consisting of stationary background ions and two electron populations, cold and hot, with the superthermal kappa distributed electrons. Using the quantum hydrodynamic (QHD) model and the reductive perturbation technique, a generalized Korteweg de Vries (KdV) equation was derived, and stationary analytical solutions were obtained. The analysis revealed that superthermal electrons substantially influence the amplitude, width, and polarity of EADLs. Numerical results indicated that decreasing the spectral index kappa or increasing the relative density of kappa electrons to hot electrons intensifies nonlinear effects, producing stronger compressive and rarefactive structures. It is also found that kappa plays a more dominant role than the density ratio in controlling EADL properties in dense astrophysical environments.

physics.plasm-ph

Plasma Dynamics in Higher-Derivative Electrodynamics: A Renormalised Two-Loop Framework

We present a finite-temperature study of Bopp-Podolsky electrodynamics, following electron-proton plasmas through one- and two-loop order with dimensional regularisation and hard-thermal-loop resummation. The higher-derivative operator is found to generate no new ultraviolet divergences; all counter-terms reduce to the single photon wave-function factor of ordinary QED. The static inter-particle force acquires a double-Yukawa profile, the familiar Debye term plus an opposite-signed contribution from the heavy Podolsky pole that removes the Coulomb singularity at sub-femtometre distances, providing an intrinsic ultraviolet completion of electrostatics. Gauge symmetry drives the transverse photon self-energy to zero at vanishing momentum, so no magnetic screening mass appears at any perturbative order. In a covariantly constant background the full two-loop sunset diagram yields a single, dimension-eight operator suppressed by T^2/M^2, implying permille-level shifts in thermodynamic quantities for realistic plasmas. The exact Debye mass and a leading-log calculation show the dc electrical conductivity exceeds its QED value by less than 10^-4. Conditions for observable Podolsky plasmons and cosmological constraints are identified, supplying precise benchmarks for future strong-field, collider and lattice investigations.

hep-ph

Electron acoustic shock and solitary waves in spin polarized dense rotating quantum plasmas

The propagation of electrostatic waves in a three-component electron positron ion astrophysical quantum plasma under the influence of uniform rotation is analysed, incorporating the effects of particle spin, Fermi pressure, and the quantum Bohm potential. Spin polarisation arising due to the alignment of particle spins under the influence of a strong external magnetic field leads to an imbalance in the population of spin-up and spin-down states. Additionally, key astrophysical factors such as rotation and gravitational influence have been considered. The coupled dispersion relations for electron, positron, and ion modes have been derived. Further, the electron acoustic shock wave is studied using the Korteweg de Vries Burgers method, and the shock wave solution has been obtained. Quantum effects are found to contribute to enhanced wave dispersion and modify the shock profile by broadening and stabilising the shock structure.

physics.plasm-ph

Generalized Kappa Distribution Function for Mixed Fermiom-Boson Quantum Plasmas

A Kappa distribution function applicable to systems comprising mixed fermions and bosons has been developed through the thermodynamic Gibbs potential utilizing the quantum versions of the Olbert kappa distributions. The generalised expressions of the partition function and the entropy have been evaluated for such mixed quantum systems. The analysis shows that boson-rich systems consistently exhibit higher entropy than fermion-rich systems. The distribution functions show heavy-tailed characteristics at low Kappa values, indicating the presence of superthermal particles. It is observed that relativistic effects lead to a significant increase in entropy.

physics.plasm-ph

A relativistic model for Quantum Plasmas

A new model to study the dynamics of relativistic quantum plasmas using the quantum electrodynamical (QED) approach has been constructed to analyze the quantum effects, relativistic corrections, and electromagnetic interactions. Considering the covariant Lagrangian function and EulerLagrange equation, the equations of motion have been established describing the interaction of strong electromagnetic waves in plasma. These equations of motion constitute a model for the propagation of relativistic laser pulse through high density quantum plasma. Our model specifically takes the effects of four spin and four velocity into account during the interaction process. This model is applicable to high density plasmas in all ranges of electromagnetic fields which includes astrophysical environments, high power laser plasma interactions, etc.

physics.plasm-ph

Spin Dynamics in Rotating Quantum Plasmas: Coupled EPI Dispersion and Solitary wave analysis

The propagation of an electrostatic wave in a three-component e-p-I astrophysical quantum plasma in a rotating frame has been studied, taking into account the particle spin, Fermi pressure, and quantum Bohm potential. Spin polarization plays a key role in explaining the dynamics of quantum plasmas, especially in astrophysical contexts due to the high external magnetic field prevalent in such environments. Effects specific to this particular environment, like rotation as well as gravity, have also been included. Coupled dispersion of electron, positron, and ion modes has been obtained. Further, the investigation of solitary waves by the Korteweg de Vries method has been carried out, and a soliton solution has been obtained. Quantum effects increase wave dispersion and soliton stability in quantum plasma, thereby affecting the electrostatic potential.

physics.plasm-ph

Dispersion in Rotating Electron-Positron-Ion Quantum Plasma

Quantum plasmas in astrophysical environments are abundant due to extreme electric, magnetic, and gravitational fields. These plasmas can be most clearly observed in neutron stars, white dwarfs, brown dwarfs, red dwarfs, accretion disks of black holes, pulsars, quasars, and more. This paper examines the propagation of electromagnetic waves in a three-component e-p-i quantum plasma within a rotating frame, considering the particles' spin, Fermi pressure, and quantum Bohm potential. Additionally, effects unique to this specific environment, such as rotation and gravity, are included. The dispersion of electrons, ions, and positrons has been obtained separately, and their coupling has been analyzed to understand the collective behavior. It has been noted that the quantum effects of Fermi pressure and Bohm potential significantly influence particle dynamics.

physics.plasm-ph

Effect of Spin Polarization on Lattice Vibrations and Electron Wave Interactions in Piezoelectric Semiconductor Quantum Plasma

The effect of spin polarization, induced by the difference in concentration of spin-up and spin-down electrons produced under the influence of a magnetic field, on lattice ion vibrationselectron wave interactions, and the resulting amplification of acoustic waves in spin polarised piezoelectric semiconductor quantum plasma has been studied. The dielectric permittivity of the high-density plasma medium has been evaluated through which the dispersion relation has been set up. The gain coefficient of acoustic waves has been obtained using the modified separate spin evolution quantum hydrodynamic (SSE-QHD) model for piezoelectric semiconductor plasma. The study reveals that quantum effects, including Fermi pressure and quantum Bohm potential, reduce wave frequency while spin polarization increases it. Acoustic gain rises significantly with frequency in the presence of quantum effects. Spin polarization also contributes to a slight increase in acoustic wave amplification.

physics.plasm-ph

Electron Acoustic Solitary Structures in Nanoparticle Doped Semiconductor Quantum Plasma

The study of electron acoustic waves (EAWs) and their associated solitary structure in semiconductor quantum plasma doped with nanoparticle clusters have been carried out. The system consists of cold and hot electrons, holes, and stationary ions. The theory has been built using the quantum hydrodynamic (QHD) model. The dispersion relation for EAWs has been set up. To explore nonlinear behaviour, the perturbation technique has been applied, leading to the Korteweg de Vries (KdV) equation. The analysis demonstrates that quantum effects stabilize wave propagation at higher frequencies while presence of nanoparticles strongly influence wave dispersion at higher frequencies, resulting in greater dispersion. Nonlinear analysis shows that solitons in quantum plasma attain higher amplitudes and broader structures due to quantum effects and with the inclusion of nanoparticles

physics.plasm-ph

Electron acoustic solitary wave in quantum plasmas with Kappa electrons

Electron-acoustic solitary waves (EASWs) in quantum plasma comprising stationary ions, cold electrons, hot electrons, and kappa-distributed electrons have been investigated. The generalized Kappa-Fermi distribution has been modified to include electrostatic energy contribution, and the density of Kappa electrons has been obtained using this modified distribution. Utilizing the quantum hydrodynamic (QHD) model, a dispersion relation has been derived for linear EAWs. Employing the standard reductive perturbation technique, a Korteweg-de Vries (KdV) equation governing the dynamics of EAWs has been derived. The quantum mechanical effects of different parameters like the kappa index, Mach number and equilibrium kappa electron density have been examined on the profiles of EASWs. It is found that the presence of kappa electrons in quantum plasma leads to new results, including steeper dispersion curves, sharper and more localized solitary waves with kappa index and stronger plasma interactions with increased kappa electron density in dense astrophysical environments

physics.plasm-ph