The after-market labeling of a device by its users often indicates problematic usability, which can affect the device's energy consumption. For example, when people find a lighting control panel difficult to use, they often write instructions on a piece of paper and affix it nearby as a reminder to themselves and to help others. We collected over a hundred examples of these “folk labels” from commercial and residential buildings through an online contest inviting people to upload photos of folk label examples, informal solicitation of colleagues, online searches, and personal observation. Some folk labels offered guidance or reminders (e.g., turn off light before fan on a projector); some provided specific instructions for multi-function controls or addressed problems identifying orientation or direction (right/left, on/off). We categorized these folk labels (e.g., by location, subject, form, etc.), and analyzed them according to usability guidelines and heuristics 1 . In addition, we evaluated their potential impact on energy consumption. We found that most folk labels indicated usability issues in three areas: visibility of available options, natural mappings, and consistency. For example, one light switch looked like a simple toggle ON-OFF control, but actually could control various dimming options (violated “visibility of available options” principle). One would naturally turn the light on full power if one did not know how to use the dimming capability. We discovered that folk labeling provides a simple means of identifying usability problems.
[1]
D. Gentner,et al.
Cultural models in language and thought: How people construct mental models
,
1987
.
[2]
G PolsonPeter,et al.
Theory-based design for easily learned interfaces
,
1990
.
[3]
David E. Culler,et al.
A living laboratory study in personalized automated lighting controls
,
2011,
BuildSys '11.
[4]
Ben Shneiderman,et al.
Designing the User Interface: Strategies for Effective Human-Computer Interaction
,
1998
.
[5]
Therese Peffer,et al.
Usability of residential thermostats: Preliminary investigations
,
2011
.
[6]
Therese Peffer,et al.
Making energy savings easier: usability metrics for thermostats
,
2011
.
[7]
Jakob Nielsen,et al.
Heuristic evaluation of user interfaces
,
1990,
CHI '90.
[8]
Tianzhen Hong,et al.
2012 ACEEE Summer Study on Energy Efficiency in Buildings PANEL 3—Commercial Buildings: Technologies, Design, Operations, Performance, and Building Industry Trends
,
2012
.
[9]
Colin Potts,et al.
Design of Everyday Things
,
1988
.
[10]
Jakob Nielsen,et al.
Usability engineering
,
1997,
The Computer Science and Engineering Handbook.
[11]
Clayton Lewis,et al.
Theory-based design for easily learned interfaces
,
1990
.