Skip to content

Commit f4d0c4a

Browse files
authored
Merge pull request #7402 from openjournals/joss.08415
Merging automatically
2 parents 41d27b4 + 61db6bf commit f4d0c4a

File tree

6 files changed

+836
-0
lines changed

6 files changed

+836
-0
lines changed
Lines changed: 266 additions & 0 deletions
Original file line numberDiff line numberDiff line change
@@ -0,0 +1,266 @@
1+
<?xml version="1.0" encoding="UTF-8"?>
2+
<doi_batch xmlns="http://www.crossref.org/schema/5.3.1"
3+
xmlns:ai="http://www.crossref.org/AccessIndicators.xsd"
4+
xmlns:rel="http://www.crossref.org/relations.xsd"
5+
xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
6+
version="5.3.1"
7+
xsi:schemaLocation="http://www.crossref.org/schema/5.3.1 http://www.crossref.org/schemas/crossref5.3.1.xsd">
8+
<head>
9+
<doi_batch_id>20251107190337-bfa74171c0f9a244d9e4b60856ffd03b0aa781e8</doi_batch_id>
10+
<timestamp>20251107190337</timestamp>
11+
<depositor>
12+
<depositor_name>JOSS Admin</depositor_name>
13+
<email_address>admin@theoj.org</email_address>
14+
</depositor>
15+
<registrant>The Open Journal</registrant>
16+
</head>
17+
<body>
18+
<journal>
19+
<journal_metadata>
20+
<full_title>Journal of Open Source Software</full_title>
21+
<abbrev_title>JOSS</abbrev_title>
22+
<issn media_type="electronic">2475-9066</issn>
23+
<doi_data>
24+
<doi>10.21105/joss</doi>
25+
<resource>https://joss.theoj.org</resource>
26+
</doi_data>
27+
</journal_metadata>
28+
<journal_issue>
29+
<publication_date media_type="online">
30+
<month>11</month>
31+
<year>2025</year>
32+
</publication_date>
33+
<journal_volume>
34+
<volume>10</volume>
35+
</journal_volume>
36+
<issue>115</issue>
37+
</journal_issue>
38+
<journal_article publication_type="full_text">
39+
<titles>
40+
<title>HELPS: an R package to project future Heat Effects on Labor Productivity by Sector</title>
41+
</titles>
42+
<contributors>
43+
<person_name sequence="first" contributor_role="author">
44+
<given_name>Di</given_name>
45+
<surname>Sheng</surname>
46+
<affiliations>
47+
<institution><institution_name>Joint Global Change Research Institute, Pacific Northwest National Laboratory, College Park, MD, USA</institution_name></institution>
48+
</affiliations>
49+
<ORCID>https://orcid.org/0009-0006-7567-380X</ORCID>
50+
</person_name>
51+
<person_name sequence="additional"
52+
contributor_role="author">
53+
<given_name>Xin</given_name>
54+
<surname>Zhao</surname>
55+
<affiliations>
56+
<institution><institution_name>Joint Global Change Research Institute, Pacific Northwest National Laboratory, College Park, MD, USA</institution_name></institution>
57+
</affiliations>
58+
<ORCID>https://orcid.org/0000-0002-1801-4393</ORCID>
59+
</person_name>
60+
<person_name sequence="additional"
61+
contributor_role="author">
62+
<given_name>Abigail</given_name>
63+
<surname>Snyder</surname>
64+
<affiliations>
65+
<institution><institution_name>Joint Global Change Research Institute, Pacific Northwest National Laboratory, College Park, MD, USA</institution_name></institution>
66+
</affiliations>
67+
<ORCID>https://orcid.org/0000-0002-9034-9948</ORCID>
68+
</person_name>
69+
<person_name sequence="additional"
70+
contributor_role="author">
71+
<given_name>Stephanie</given_name>
72+
<surname>Morris</surname>
73+
<affiliations>
74+
<institution><institution_name>Joint Global Change Research Institute, Pacific Northwest National Laboratory, College Park, MD, USA</institution_name></institution>
75+
</affiliations>
76+
<ORCID>https://orcid.org/0000-0002-8073-0868</ORCID>
77+
</person_name>
78+
<person_name sequence="additional"
79+
contributor_role="author">
80+
<given_name>Chris</given_name>
81+
<surname>Vernon</surname>
82+
<affiliations>
83+
<institution><institution_name>Joint Global Change Research Institute, Pacific Northwest National Laboratory, College Park, MD, USA</institution_name></institution>
84+
</affiliations>
85+
<ORCID>https://orcid.org/0000-0002-3406-6214</ORCID>
86+
</person_name>
87+
</contributors>
88+
<publication_date>
89+
<month>11</month>
90+
<day>07</day>
91+
<year>2025</year>
92+
</publication_date>
93+
<pages>
94+
<first_page>8415</first_page>
95+
</pages>
96+
<publisher_item>
97+
<identifier id_type="doi">10.21105/joss.08415</identifier>
98+
</publisher_item>
99+
<ai:program name="AccessIndicators">
100+
<ai:license_ref applies_to="vor">http://creativecommons.org/licenses/by/4.0/</ai:license_ref>
101+
<ai:license_ref applies_to="am">http://creativecommons.org/licenses/by/4.0/</ai:license_ref>
102+
<ai:license_ref applies_to="tdm">http://creativecommons.org/licenses/by/4.0/</ai:license_ref>
103+
</ai:program>
104+
<rel:program>
105+
<rel:related_item>
106+
<rel:description>Software archive</rel:description>
107+
<rel:inter_work_relation relationship-type="references" identifier-type="doi">10.5281/zenodo.17396826</rel:inter_work_relation>
108+
</rel:related_item>
109+
<rel:related_item>
110+
<rel:description>GitHub review issue</rel:description>
111+
<rel:inter_work_relation relationship-type="hasReview" identifier-type="uri">https://github.com/openjournals/joss-reviews/issues/8415</rel:inter_work_relation>
112+
</rel:related_item>
113+
</rel:program>
114+
<doi_data>
115+
<doi>10.21105/joss.08415</doi>
116+
<resource>https://joss.theoj.org/papers/10.21105/joss.08415</resource>
117+
<collection property="text-mining">
118+
<item>
119+
<resource mime_type="application/pdf">https://joss.theoj.org/papers/10.21105/joss.08415.pdf</resource>
120+
</item>
121+
</collection>
122+
</doi_data>
123+
<citation_list>
124+
<citation key="orlov2020economic">
125+
<article_title>Economic costs of heat-induced reductions in worker productivity due to global warming</article_title>
126+
<author>Orlov</author>
127+
<journal_title>Global Environmental Change</journal_title>
128+
<volume>63</volume>
129+
<doi>10.1016/j.gloenvcha.2020.102087</doi>
130+
<cYear>2020</cYear>
131+
<unstructured_citation>Orlov, A., Sillmann, J., Aunan, K., Kjellstrom, T., &amp; Aaheim, A. (2020). Economic costs of heat-induced reductions in worker productivity due to global warming. Global Environmental Change, 63, 102087. https://doi.org/10.1016/j.gloenvcha.2020.102087</unstructured_citation>
132+
</citation>
133+
<citation key="de2021heat">
134+
<article_title>Heat stress on agricultural workers exacerbates crop impacts of climate change</article_title>
135+
<author>De Lima</author>
136+
<journal_title>Environmental Research Letters</journal_title>
137+
<issue>4</issue>
138+
<volume>16</volume>
139+
<doi>10.1088/1748-9326/abeb9f</doi>
140+
<cYear>2021</cYear>
141+
<unstructured_citation>De Lima, C. Z., Buzan, J. R., Moore, F. C., Baldos, U. L. C., Huber, M., &amp; Hertel, T. W. (2021). Heat stress on agricultural workers exacerbates crop impacts of climate change. Environmental Research Letters, 16(4), 044020. https://doi.org/10.1088/1748-9326/abeb9f</unstructured_citation>
142+
</citation>
143+
<citation key="shengomitting">
144+
<article_title>Omitting labor responses underestimates the effects of future heat stress on agriculture</article_title>
145+
<author>Sheng</author>
146+
<journal_title>Communications Earth &amp; Environment</journal_title>
147+
<issue>1</issue>
148+
<volume>6</volume>
149+
<doi>10.1038/s43247-025-02318-w</doi>
150+
<cYear>2025</cYear>
151+
<unstructured_citation>Sheng, D., Zhao, X., Edmonds, J. A., Morris, S. T., Patel, P., O’Neill, B. C., Tebaldi, C., &amp; Wise, M. A. (2025). Omitting labor responses underestimates the effects of future heat stress on agriculture. Communications Earth &amp; Environment, 6(1), 400. https://doi.org/10.1038/s43247-025-02318-w</unstructured_citation>
152+
</citation>
153+
<citation key="sheng2025labour">
154+
<article_title>Labour market evolution is a key determinant of global agroeconomic and environmental futures</article_title>
155+
<author>Sheng</author>
156+
<journal_title>Nature Food</journal_title>
157+
<issue>2</issue>
158+
<volume>6</volume>
159+
<doi>10.1038/s43016-024-01088-6</doi>
160+
<cYear>2025</cYear>
161+
<unstructured_citation>Sheng, D., Edmonds, J. A., Patel, P., Waldhoff, S. T., O’Neill, B. C., Wise, M. A., &amp; Zhao, X. (2025). Labour market evolution is a key determinant of global agroeconomic and environmental futures. Nature Food, 6(2), 139–150. https://doi.org/10.1038/s43016-024-01088-6</unstructured_citation>
162+
</citation>
163+
<citation key="casanueva2020escalating">
164+
<article_title>Escalating environmental summer heat exposure—a future threat for the European workforce</article_title>
165+
<author>Casanueva</author>
166+
<journal_title>Regional Environmental Change</journal_title>
167+
<volume>20</volume>
168+
<doi>10.1007/s10113-020-01625-6</doi>
169+
<cYear>2020</cYear>
170+
<unstructured_citation>Casanueva, A., Kotlarski, S., Fischer, A. M., Flouris, A. D., Kjellstrom, T., Lemke, B., Nybo, L., Schwierz, C., &amp; Liniger, M. A. (2020). Escalating environmental summer heat exposure—a future threat for the European workforce. Regional Environmental Change, 20, 1–14. https://doi.org/10.1007/s10113-020-01625-6</unstructured_citation>
171+
</citation>
172+
<citation key="spangler2022wet">
173+
<article_title>Wet-bulb globe temperature, universal thermal climate index, and other heat metrics for US counties, 2000–2020</article_title>
174+
<author>Spangler</author>
175+
<journal_title>Scientific data</journal_title>
176+
<issue>1</issue>
177+
<volume>9</volume>
178+
<doi>10.1038/s41597-022-01405-3</doi>
179+
<cYear>2022</cYear>
180+
<unstructured_citation>Spangler, K. R., Liang, S., &amp; Wellenius, G. A. (2022). Wet-bulb globe temperature, universal thermal climate index, and other heat metrics for US counties, 2000–2020. Scientific Data, 9(1), 326. https://doi.org/10.1038/s41597-022-01405-3</unstructured_citation>
181+
</citation>
182+
<citation key="hijmans2023package">
183+
<article_title>Package ‘meteor’</article_title>
184+
<author>Hijmans</author>
185+
<cYear>2023</cYear>
186+
<unstructured_citation>Hijmans, R. J., &amp; Nelson, G. (2023). Package “meteor”. https://cran.r-project.org/web/packages/meteor/index.html</unstructured_citation>
187+
</citation>
188+
<citation key="smallcombe2022quantifying">
189+
<article_title>Quantifying the impact of heat on human physical work capacity; part IV: Interactions between work duration and heat stress severity</article_title>
190+
<author>Smallcombe</author>
191+
<journal_title>International Journal of Biometeorology</journal_title>
192+
<issue>12</issue>
193+
<volume>66</volume>
194+
<doi>10.1007/s00484-022-02370-7</doi>
195+
<cYear>2022</cYear>
196+
<unstructured_citation>Smallcombe, J. W., Foster, J., Hodder, S. G., Jay, O., Flouris, A. D., &amp; Havenith, G. (2022). Quantifying the impact of heat on human physical work capacity; part IV: Interactions between work duration and heat stress severity. International Journal of Biometeorology, 66(12), 2463–2476. https://doi.org/10.1007/s00484-022-02370-7</unstructured_citation>
197+
</citation>
198+
<citation key="foster2021advanced">
199+
<article_title>An advanced empirical model for quantifying the impact of heat and climate change on human physical work capacity</article_title>
200+
<author>Foster</author>
201+
<journal_title>International Journal of Biometeorology</journal_title>
202+
<volume>65</volume>
203+
<doi>10.1007/s00484-021-02105-0</doi>
204+
<cYear>2021</cYear>
205+
<unstructured_citation>Foster, J., Smallcombe, J. W., Hodder, S., Jay, O., Flouris, A. D., Nybo, L., &amp; Havenith, G. (2021). An advanced empirical model for quantifying the impact of heat and climate change on human physical work capacity. International Journal of Biometeorology, 65, 1215–1229. https://doi.org/10.1007/s00484-021-02105-0</unstructured_citation>
206+
</citation>
207+
<citation key="jagermeyr2021ggcmi">
208+
<article_title>GGCMI phase 3 crop calendar</article_title>
209+
<author>Jägermeyr</author>
210+
<doi>10.5281/zenodo.5062513</doi>
211+
<cYear>2021</cYear>
212+
<unstructured_citation>Jägermeyr, J., Müller, C., Minoli, S., Ray, D., &amp; Siebert, S. (2021). GGCMI phase 3 crop calendar (Version 1.0) [Dataset]. Zenodo. https://doi.org/10.5281/zenodo.5062513</unstructured_citation>
213+
</citation>
214+
<citation key="SPAM2024">
215+
<article_title>Global spatially-disaggregated crop production statistics data for 2020 version 1.0.0</article_title>
216+
<author>IFPRI</author>
217+
<journal_title>Harvard Dataverse, v1</journal_title>
218+
<doi>10.7910/DVN/SWPENT</doi>
219+
<cYear>2024</cYear>
220+
<unstructured_citation>IFPRI. (2024). Global spatially-disaggregated crop production statistics data for 2020 version 1.0.0. In Harvard Dataverse, v1. Harvard Library Cambridge, MA. https://doi.org/10.7910/DVN/SWPENT</unstructured_citation>
221+
</citation>
222+
<citation key="schwingshackl2021heat">
223+
<article_title>Heat stress indicators in CMIP6: Estimating future trends and exceedances of impact-relevant thresholds</article_title>
224+
<author>Schwingshackl</author>
225+
<journal_title>Earth’s Future</journal_title>
226+
<issue>3</issue>
227+
<volume>9</volume>
228+
<doi>10.1029/2020EF001885</doi>
229+
<cYear>2021</cYear>
230+
<unstructured_citation>Schwingshackl, C., Sillmann, J., Vicedo-Cabrera, A. M., Sandstad, M., &amp; Aunan, K. (2021). Heat stress indicators in CMIP6: Estimating future trends and exceedances of impact-relevant thresholds. Earth’s Future, 9(3), e2020EF001885. https://doi.org/10.1029/2020EF001885</unstructured_citation>
231+
</citation>
232+
<citation key="kong2022explicit">
233+
<article_title>Explicit calculations of wet-bulb globe temperature compared with approximations and why it matters for labor productivity</article_title>
234+
<author>Kong</author>
235+
<journal_title>Earth’s Future</journal_title>
236+
<issue>3</issue>
237+
<volume>10</volume>
238+
<doi>10.1029/2021EF002334</doi>
239+
<cYear>2022</cYear>
240+
<unstructured_citation>Kong, Q., &amp; Huber, M. (2022). Explicit calculations of wet-bulb globe temperature compared with approximations and why it matters for labor productivity. Earth’s Future, 10(3), e2021EF002334. https://doi.org/10.1029/2021EF002334</unstructured_citation>
241+
</citation>
242+
<citation key="calvin2019gcam">
243+
<article_title>GCAM v5. 1: Representing the linkages between energy, water, land, climate, and economic systems</article_title>
244+
<author>Calvin</author>
245+
<journal_title>Geoscientific Model Development</journal_title>
246+
<issue>2</issue>
247+
<volume>12</volume>
248+
<doi>10.5194/gmd-12-677-2019</doi>
249+
<cYear>2019</cYear>
250+
<unstructured_citation>Calvin, K., Patel, P., Clarke, L., Asrar, G., Bond-Lamberty, B., Cui, R. Y., Di Vittorio, A., Dorheim, K., Edmonds, J., Hartin, C., &amp; others. (2019). GCAM v5. 1: Representing the linkages between energy, water, land, climate, and economic systems. Geoscientific Model Development, 12(2), 677–698. https://doi.org/10.5194/gmd-12-677-2019</unstructured_citation>
251+
</citation>
252+
<citation key="buzan2020moist">
253+
<article_title>Moist heat stress on a hotter Earth</article_title>
254+
<author>Buzan</author>
255+
<journal_title>Annual Review of Earth and Planetary Sciences</journal_title>
256+
<issue>1</issue>
257+
<volume>48</volume>
258+
<doi>10.1146/annurev-earth-053018-060100</doi>
259+
<cYear>2020</cYear>
260+
<unstructured_citation>Buzan, J. R., &amp; Huber, M. (2020). Moist heat stress on a hotter Earth. Annual Review of Earth and Planetary Sciences, 48(1), 623–655. https://doi.org/10.1146/annurev-earth-053018-060100</unstructured_citation>
261+
</citation>
262+
</citation_list>
263+
</journal_article>
264+
</journal>
265+
</body>
266+
</doi_batch>

joss.08415/10.21105.joss.08415.pdf

2.22 MB
Binary file not shown.

0 commit comments

Comments
 (0)