Eric M. Gallo

dblp:315/0618 · DBLP profile ↗
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4ranked-venue papers
0as first author
4since 2021 · last 2025
0000-0001-9086-3480ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Human-computer interaction and ubiquitous computing · 4 · 4 since 2021
YearPublicationVenuePosition
2025 Advancing HCI with Neuromorphic Technology: Guidelines for Designing User-Friendly Developer Tools for Neuromorphic Development
Divesh Upreti, Aditi Maheshwari, Taylor Tabb, Ioannis Polykretis, Eric M. Gallo, Kenneth Michael Stewart, Thomas D. LaToza, Andreea Danielescu 0001
CHI5
2023 Creating Inclusive Voices for the 21st Century: A Non-Binary Text-to-Speech for Conversational Assistants
abstract
As voice assistant usage continues to grow, their homogeneity becomes even more problematic with the UNESCO report, “I’d Blush if I could” showing that designing only feminine voice assistants encourages negative behavior, both with virtual assistants and with real people [3]. While masculine text-to-speech (TTS) voices exist, ones that cover the full range of gender presentations, such as non-binary or gender-ambiguous voices are largely missing. In this paper, we present a method of creating a non-binary TTS voice and an example voice, Sam, created with input from the non-binary and transgender communities. We have open-sourced the resulting voice, along with the process and data used to create it. Finally, we present results from a large-scale survey showing that non-binary individuals are more likely to prefer a non-binary voice assistant compared to cisgendered individuals and discuss differences across age and gender.
Andreea Danielescu 0001, Sharone Horowit-Hendler, Alexandria Pabst, Kenneth Michael Stewart, Eric M. Gallo, Matthew P. Aylett
CHI5
2023 Functional Destruction: Utilizing Sustainable Materials' Physical Transiency for Electronics Applications
abstract
Today’s electronics are manufactured to provide stable functionality and fixed physical forms optimized for reliable operation over long periods and repeated use. However, even when applications don’t call for such robustness, the permanency of these electronics comes with environmental consequences. In this paper, we describe an alternative approach that utilizes sustainable transient electronics whose method of destruction is also key to their functionality. We create these electronics through three different methods: 1) by inkjet printing conductive silver traces on poly(vinyl alcohol) (PVA) substrates to create water-soluble sensors; 2) by mixing a conductive beeswax material configured as a meltable sensor; and 3) by fabricating edible electronics with 3D printed chocolate and culinary gold leaf. To enable practical applications of these devices, we implement a fully transient and sustainable chipless RF detection system.
Tingyu Cheng, Taylor Tabb, Jung Wook Park, Eric M. Gallo, Aditi Maheshwari, Gregory D. Abowd, HyunJoo Oh 0001, Andreea Danielescu 0001
CHI4
2022 Towards Decomposable Interactive Systems: Design of a Backyard-Degradable Wireless Heating Interface
abstract
Sustainability is critical to our planet and thus our designs. Within HCI, there is a tension between the desire to create interactive electronic systems and sustainability. In this paper, we present the design of an interactive system comprising components that are entirely decomposable. We leverage the inherent material properties of natural materials, such as paper, leaf skeletons, and chitosan, along with silver nanowires to create a new system capable of being electrically controlled as a portable heater. This new decomposable system, capable of wirelessly heating to >70°C, is flexible, lightweight, low-cost, and reusable, and it maintains its functionality over long periods of heating and multiple power cycles. We detail its design and present a series of use cases, from enabling a novel resealable packaging system to acting as a catalyst for shape-changing designs and beyond. Finally, we highlight the important decomposable property of the interactive system when it meets end-of-life.
Katherine W. Song, Aditi Maheshwari, Eric M. Gallo, Andreea Danielescu 0001, Eric Paulos
CHI3