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  • Patients supported AI-drafted portal messages with clinician oversight

    What the study found

    Patients viewed patient portal messaging as mainly transactional, with a focus on timely problem-solving rather than relationship-building. They were generally comfortable with AI-drafted replies, but that comfort depended on clinician oversight and accountability.

    Why the authors say this matters

    The authors conclude that AI use in portal messaging may support more efficient communication if clinicians remain responsible for the messages. They also say implementation should include clinician oversight, context-sensitive communication standards, standardized disclosure practices, and monitoring of quality, equity, patient trust, and safety.

    What the researchers tested

    The study used a qualitative design with vignette-based prompts modeled on scenarios from a prior survey about AI-drafted online messaging. Researchers interviewed 40 adult patients from a large academic health system by videoconference between April and August 2025, using draft messages that varied in tone, length, and implied authorship.

    What worked and what didn't

    Patients expressed high comfort with AI-drafted messages when a clinician reviewed them. Preferences for tone and empathy varied by person and situation, and were shaped more by whether the message fit the purpose and seriousness of the communication than by whether it seemed AI-like or human-like. Participants broadly supported AI disclosure, but they differed on when and how disclosure should be presented.

    What to keep in mind

    This was a qualitative study of 40 patients from one large academic health system, so the findings describe this sample rather than a broader population. The abstract does not describe long-term outcomes, and it notes that downstream effects on quality, equity, trust, and safety should be monitored.

    • Patients described portal messages as transactional and focused on timely problem resolution.
    • Comfort with AI-drafted replies was high when clinicians reviewed the messages.
    • Message tone, length, and detail mattered more than whether a message seemed AI-like or human-like.
    • Participants broadly wanted disclosure that AI was involved, but preferred different timing and formats.
    • The authors recommend clinician oversight and monitoring of effects on quality, equity, trust, and safety.
  • Patients reported challenges with orthodontic retention and retainer adherence

    What the study found

    The study found that patient experiences with orthodontic retention and retainers were shaped by several connected factors, including how patients lived with retainer wear and how they decided whether to follow retention instructions. The authors report three main themes: lived experience and impact of retainer wear, factors influencing adherence to retention protocols, and information, support, and decision-making systems.

    Why the authors say this matters

    The authors conclude that the findings provide important insights into patient experiences with orthodontic retention and retainers. They suggest that problems in shared decision-making, information delivery, and clinician-patient relationships were linked to more difficulty following retention protocols and lower satisfaction for many patients.

    What the researchers tested

    The researchers carried out a qualitative meta-ethnography, a method for combining findings from qualitative studies to interpret shared themes across them. They searched four databases up to 28 January 2026, included relevant mixed-methods and qualitative studies, and used two independent reviewers for study selection, data extraction, and quality appraisal with the Critical Appraisal Skills Programme tool for qualitative research.

    What worked and what didn't

    Out of 1,225 investigations identified, seven studies from four countries with 140 participants were included. The included studies, mostly about removable retainers, produced three main themes and eight sub-themes; the authors report that parental support became less important and reminder strategies less effective the longer patients were in the retention phase, while peer influence could be either supportive or demotivating depending on context.

    What to keep in mind

    The summary does not provide detailed limitations beyond the small number of included studies and participants. It also notes that the included investigations were published between 2019 and 2025 and mostly concerned removable retainers, so the findings may mainly reflect that context.

    • Seven studies from four countries were included in the meta-synthesis.
    • The included evidence covered 140 participants and mostly focused on removable retainers.
    • Three main themes were identified: lived experience, adherence factors, and information/support/decision-making systems.
    • Deficiencies in shared decision-making, information delivery, and clinician-patient relationships were linked to poorer adherence and satisfaction for many patients.
    • Parental support and reminder strategies appeared less effective as patients spent longer in retention.
    • Peer influence could help or hinder adherence depending on the situation.
  • Silicon photonic chip enables flexible millimeter-wave signal synthesis

    What the study found

    The study found that a silicon photonic chip, paired with a reconfigurable optical frequency comb, can be used for flexible millimeter-wave signal synthesis. The experiments showed single-frequency, multi-frequency, and vector signal generation at high frequencies.

    Why the authors say this matters

    The authors conclude that the results verify a compact and scalable architecture for agile radio-over-fiber and next-generation high-frequency wireless systems. They also frame photonics-assisted millimeter-wave and terahertz signal generation as a way to overcome bandwidth limits in electronic devices.

    What the researchers tested

    The researchers tested a silicon photonic chip combined with a reconfigurable optical frequency comb. The chip integrated reconfigurable filtering and modulation to support precise frequency allocation, multi-tone combination, and arbitrary in-phase and quadrature, or IQ, vector signal synthesis.

    What worked and what didn't

    Experiments demonstrated generation and demodulation of a 46 GHz single-frequency signal. They also demonstrated simultaneous 39 GHz and 52 GHz multi-frequency signals, as well as 41 GHz vector signals.

    What to keep in mind

    The abstract does not describe detailed performance limits, comparison studies, or experimental constraints. The claims here are limited to the signals and frequencies reported in the abstract.

    • A silicon photonic chip was used with a reconfigurable optical frequency comb.
    • The system generated and demodulated a 46 GHz single-frequency signal.
    • It also produced simultaneous 39 GHz and 52 GHz multi-frequency signals.
    • The chip enabled 41 GHz vector signal synthesis.
    • The authors say the results support a compact and scalable architecture for radio-over-fiber and high-frequency wireless systems.
  • Most children with congenital heart disease were not lipid screened

    What the study found

    Only a small proportion of children with congenital heart disease (CHD) had documented lipid screening, but dyslipidemia was common among those who were screened. The authors report that screening was more frequent among children with higher body mass index (BMI) percentiles and among Black patients.

    Why the authors say this matters

    The authors conclude that these findings emphasize the importance of universal screening for dyslipidemia in children with CHD. They note that dyslipidemia is associated with later atherosclerosis, which is a buildup of fatty material in the arteries, and cardiovascular events in adulthood.

    What the researchers tested

    The researchers reviewed children with CHD aged 9 to 18 years who were followed at their institution from 2012 to 2019. They examined whether a lipid panel was documented and classified children as dyslipidemic based on standard cholesterol and triglyceride cutoffs.

    What worked and what didn't

    Of 1,579 patients, 11.3% had a documented lipid panel. Among the 179 screened children, 60% met criteria for dyslipidemia. Screened children had a higher median BMI percentile than unscreened children, and children with dyslipidemia had a higher median BMI percentile than those without dyslipidemia.

    What to keep in mind

    The abstract does not describe why most children were not screened or whether the findings apply beyond this institution. It also does not provide outcome data showing what happened after dyslipidemia was identified.

    • Only 11.3% of 1,579 children with CHD had a documented lipid panel.
    • Among screened children, 60% had dyslipidemia.
    • Higher BMI percentile was associated with being screened and with having dyslipidemia.
    • Black patients made up a larger share of the screened group than the unscreened group.
    • Rates of dyslipidemia were similar across races and CHD lesions.
  • Absorptive scattering of spinning bodies is parametrized by spin transitions

    What the study found

    The study presents an on-shell, amplitudes-based way to include radiation absorption in the scattering of compact spinning bodies. It shows that classical spinning observables can be recovered from finite quantum spin particles by using spin universality and Casimir interpolation.

    Why the authors say this matters

    The authors conclude that their formalism extends the amplitudes-based calculational pipeline for gravitational waveforms from binary black hole and neutron star systems beyond the point-particle approximation. They present this as a broader way to handle absorptive observables in spinning-body scattering.

    What the researchers tested

    The researchers developed a leading-order, on-shell approach for post-Minkowskian scattering, which is a perturbative framework for gravitational interactions in the scattering regime. They used finite quantum spin-s particles, then extrapolated to large spin to recover classical observables, and wrote the absorptive effects in terms of Wilson coefficients associated with 3-particle on-shell amplitudes that change mass and spin magnitude.

    What worked and what didn't

    At leading order, the authors give a general and non-redundant parametrization of absorptive observables. They provide explicit impulse results for absorption of scalar, electromagnetic, and gravitational radiation for spin transitions of ∆s = 0, ±1, ±2, up to O(S^2), with Casimir-independent terms up to O(S^4).

    What to keep in mind

    The abstract reports leading-order results and does not describe broader validation or comparison with data. It also notes that some explicit results are given only in interpolated form, and the summary does not provide limitations beyond the stated spin-order range and transition cases.

    • The paper introduces an on-shell, amplitudes-based method for absorptive scattering of compact spinning bodies.
    • Classical spinning observables are obtained by extrapolating from finite quantum spin-s particles.
    • The leading-order description is organized by a finite set of Wilson coefficients tied to 3-particle amplitudes.
    • Explicit impulse results are given for scalar, electromagnetic, and gravitational radiation absorption.
    • The authors report universal patterns for spin-up and spin-down transitions of the same magnitude.
  • Froude number scaling unifies impact trajectories in granular media

    What the study found

    The study found that surface impacts into cohesionless granular media can look qualitatively similar across different gravitational conditions when initial velocities are scaled with the Froude number, a dimensionless number that relates inertia to gravity. The authors describe this as evidence for an underlying law.

    Why the authors say this matters

    The authors conclude that Froude number scaling may provide a way to unify impact behavior across gravitational conditions. They also suggest that granular dynamic resistive force theory helps explain why this universality appears.

    What the researchers tested

    The researchers used hundreds of soft-sphere discrete element simulations, a particle-based computer modeling approach, to study how gravity affects surface impact behavior in cohesionless granular media. They also used granular dynamic resistive force theory to reason about the pattern they observed.

    What worked and what didn't

    According to the abstract, scaling initial velocities by the Froude number precisely collapsed impact trajectories across gravitational conditions, within a set of assumptions. The abstract does not describe any cases where the scaling failed or any specific exceptions.

    What to keep in mind

    The claimed collapse is stated to hold within a set of assumptions, but those assumptions are not detailed in the abstract. The available summary also does not describe limitations beyond that scope.

    • Impact outcomes into cohesionless granular media were reported to be qualitatively similar across different gravitational conditions when velocities were scaled with the Froude number.
    • The authors present this scaling behavior as evidence for an underlying law.
    • Hundreds of soft-sphere discrete element simulations were used to test the effect of gravity on impact trajectories.
    • Granular dynamic resistive force theory was used to explain the observed universality.
    • The abstract says Froude number scaling precisely collapsed impact trajectories within a set of assumptions.
  • Deposits and loans were strongly positively related at RAKUB

    What the study found

    The study found a strong relationship between deposits and loans at Rajshahi Krishi Unnayan Bank (RAKUB), with the two variables highly positively correlated. It also found that deposit behavior affected lending to a large extent.

    Why the authors say this matters

    The authors conclude that deposits are a major factor in bank fund management and have a significant impact on loans and advances. They also suggest that RAKUB should carefully maintain a balance between loans and deposits for its survival in a competitive business environment.

    What the researchers tested

    The researchers examined deposit behavior and its impact on loan disbursement at RAKUB, a rural development bank in the northwest region of Bangladesh. They used an analytical and interpretative approach and applied a two-variable regression model to empirical data on deposits and loans.

    What worked and what didn't

    The correlation coefficient showed that loans and deposits were highly positively correlated. The study reports that deposits had a significant impact on loans and advances. No negative relationship or lack of effect was reported in the abstract.

    What to keep in mind

    The summary does not describe sample size, time period, or detailed data sources. Limitations are not described in the available abstract.

    • RAKUB’s deposits and loans were reported to be highly positively correlated.
    • Deposit behavior was said to affect lending to a large extent.
    • The study used a two-variable regression model on deposit and loan data.
    • The authors state that deposits are important for bank fund management.
    • The abstract does not provide study limits such as sample size or time frame.
  • Pancake shapes in 2D cosmologies are highly anisotropic

    What the study found

    The study found that, in the model examined, pancakes in two-dimensional cold dark matter cosmologies are dominantly C-shaped, and that many of them evolve into filaments. It also found that pancakes are more strongly curved when they evolve into halos, and that the shell crossing is highly anisotropic.

    Why the authors say this matters

    The authors suggest that the cosmic web can be characterized using singularities, which are the points where particle trajectories first cross. They also conclude that extending this work to three dimensions could allow tests against observations of the cosmic web and searches for signatures of non-Gaussianity, meaning departures from Gaussian, or bell-curve-like, statistics.

    What the researchers tested

    The researchers used catastrophe theory in two dimensions to study motion around singularities and to analytically model the shape of emerging structures, especially pancakes. They computed higher-order corrections to pancake shape, including curvature and the transition scale from C to S, and used Gaussian statistics under a Zeldovich flow assumption for the model parameters.

    What worked and what didn't

    Their model produced distributions of observable pancake-shape features and their variation across halo and filament populations in two-dimensional cosmologies. The reported results were that a larger fraction of pancakes evolves into filaments, pancakes are more curved when they evolve into halos, and the shell crossing is highly anisotropic.

    What to keep in mind

    The abstract describes a two-dimensional theoretical study, so the results are limited to that setting. It also notes that an extension to three dimensions would be needed to compare predictions with actual cosmic-web observations.

    • Pancakes in the 2D model are mostly C-shaped.
    • More pancakes evolve into filaments than into other structures.
    • Pancakes that become halos are more strongly curved.
    • Shell crossing is described as highly anisotropic.
    • The study uses catastrophe theory and Gaussian statistics with a Zeldovich flow assumption.
  • Toggled magnetic fields create continuously restructuring colloidal ribbons

    What the study found

    The study found that ribbonlike aggregates in paramagnetic colloidal suspensions show active dynamics when an external field is toggled on and off. These aggregates undergo continual restructuring through spontaneous emission of small aggregates, merging, and splitting.

    Why the authors say this matters

    The authors conclude that the dynamic structures observed in these experiments appear to be unique to the dissipative self-assembly of magnetic colloids in toggled fields. The findings indicate that the instabilities increase total motion in the suspension.

    What the researchers tested

    The researchers studied self-assembled ribbonlike aggregates formed in paramagnetic colloidal suspensions under an external field that was switched on and off. They measured multiscale dynamics using perimeter tracking and dense optical flow methods.

    What worked and what didn't

    The observed instabilities included spontaneous emission of small aggregates, as well as merging and splitting. These processes were associated with greater total motion in the suspension. The abstract does not report any interventions or conditions that did not produce these effects.

    What to keep in mind

    The summary provided is limited to the abstract, so detailed experimental conditions, quantitative results, and broader limitations are not described. The abstract also does not compare these dynamics with other systems beyond stating that they appear unique to this setting.

    • Ribbonlike aggregates in paramagnetic colloidal suspensions showed continual restructuring under toggled external fields.
    • The instabilities included spontaneous emission, merging, and splitting of small aggregates.
    • Perimeter tracking and dense optical flow were used to measure multiscale dynamics.
    • The presence of these instabilities increased total motion in the suspension.
    • The authors say the dynamic structures appear unique to dissipative self-assembly of magnetic colloids in toggled fields.
  • Trajectory reduction lowered LLM agent token costs

    What the study found

    The study found that inference-time trajectory reduction can lower the cost of LLM (large language model) agents without reducing performance. The authors report that their approach, AgentDiet, removed wasteful information from agent trajectories during execution while keeping agent results the same.

    Why the authors say this matters

    The authors say this matters because high input-token cost from ever-growing trajectories is a major efficiency concern for multi-turn LLM agents in software engineering. The study suggests that inference-time trajectory reduction is a promising direction for agent systems.

    What the researchers tested

    The researchers analyzed existing agent trajectories to identify useless, redundant, and expired information. They then proposed AgentDiet, a simple trajectory reduction approach that automatically removes such waste during agent execution, and implemented it on a top-performing coding agent.

    What worked and what didn't

    On two LLMs and two benchmarks, AgentDiet reduced input tokens by 39.9% to 59.7% and total computational cost by 21.1% to 35.9%. The abstract says this was achieved while maintaining the same agent performance; it does not report any performance loss in the summary provided.

    What to keep in mind

    The available summary does not describe detailed limitations, failure cases, or broader scope constraints. The results reported here come from two LLMs and two benchmarks, so the abstract only supports conclusions within that tested setting.

    • AgentDiet is an inference-time trajectory reduction approach for LLM agents.
    • The authors found wasteful information was widespread in agent trajectories.
    • AgentDiet reduced input tokens by 39.9% to 59.7% in the reported tests.
    • Total computational cost fell by 21.1% to 35.9% while performance stayed the same.
    • The abstract describes the approach as promising for agent systems.